[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_94a1b34a-53a4-4a42-80c2-74a12e130694":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:94a1b34a-53a4-4a42-80c2-74a12e130694,\"}":222},{"code":4,"data":5,"meta":22},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":24,"manageAffiliations":48,"indexDatabases":64,"url":22,"thumbnailPath":22,"statistic":103,"gsStatistic":22,"type":221,"analyzePriority":22},"94a1b34a-53a4-4a42-80c2-74a12e130694","2024-04-06T02:30:17.445+00:00","2025-11-21T10:05:17.291+00:00",[],"Plasma-Chemistry-and-Plasma-Processing",{"eissn":12,"issn":14,"title":16,"url":18},{"VOID":13},"02724324",{"VOID":15},"15728986",{"EN":17},"Plasma Chemistry and Plasma Processing",{"VOID":19},"https:\u002F\u002Flink.springer.com\u002Fjournal\u002F11090","PUBLISHER","PENDING",null,0,[25,31,37,43],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":27,"label":28,"description":30,"parentId":22,"standard":22,"scholarHubFieldId":22},"92b6979a-8d2f-4ae3-b057-43b6e548593e",[],{"EN":29},"Condensed Matter Physics",{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":33,"label":34,"description":36,"parentId":22,"standard":22,"scholarHubFieldId":22},"a05a6ffc-72bd-44e2-997d-ecca18df2c61",[],{"EN":35},"Chemical Engineering (miscellaneous)",{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":39,"label":40,"description":42,"parentId":22,"standard":22,"scholarHubFieldId":22},"cf3aa2e4-1bc6-404f-a558-6e04a0efe9bb",[],{"EN":41},"Surfaces, Coatings and Films",{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":45,"label":46,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},"0c377c0c-be6f-4b00-b1c2-526fe16305a0",[],{"EN":47},"Chemistry (miscellaneous)",[49,56],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":51,"slug":22,"properties":52,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":55,"statistic":22},"26a19206-5cad-4456-bb2f-49abd254fbc6",[],{"title":53},{"EN":54},"SPRINGER",[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":58,"slug":22,"properties":59,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":62,"statistic":22},"1553eaa4-de45-4fd0-9ca3-a7b44788e9e7",[],{"title":60},{"EN":61},"Springer New York",[63],"9a7c7208-b28a-42c2-a634-5a7f90eee3ab",[65,85],{"id":66,"indexDatabase":67,"url":77,"indexYears":78,"academicFieldIds":79,"indexDatabaseRanking":84},"f57a64c3-d24b-4931-b186-ffd9a9f88289",{"id":68,"createTime":22,"updateTime":22,"relativeEntities":69,"label":70,"description":72,"key":74,"publicationTags":75,"standard":22},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":71,"VI":71},"Scopus - Elsevier",{"EN":71,"VI":73},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[76],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F13689","1981-2025",[80,81,82,83],"71c20870-549f-47ca-ab5d-72466dbb5bc3","da143f9f-0a9d-478c-80e2-ab1e42b8d0a4","1ecff757-a023-4b19-bdfb-1a30a5bece6b","f674a9a3-e324-4967-aa47-455deb3a990d","SCOPUS__Q1",{"id":86,"indexDatabase":87,"url":99,"indexYears":22,"academicFieldIds":100,"indexDatabaseRanking":22},"fb78616d-3da8-4b22-b1a9-64e09e66d2b4",{"id":88,"createTime":22,"updateTime":22,"relativeEntities":89,"label":90,"description":92,"key":95,"publicationTags":96,"standard":22},"a4921856-b128-4d9f-8f1f-e80813d3bbd4",[],{"EN":91,"VI":91},"ISI\u002FSCIE - Science Citation Index Expanded",{"EN":93,"VI":94},"SCIE database","Cơ sở dữ liệu SCIE","scie",[97,98],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=0272-4324",[101,102],"b9de2dc0-e3c5-4d41-9bb2-edad22f0ba84","c7becea0-d1b0-4771-9420-b5912f13066f",{"impactFactor":23,"impactFactorByYear":104,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":120,"totalCitation":149,"totalCitationByYear":150,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":182,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},0.2,0.32,0.55,0.65,0.58,0.47,0.46,0.52,0.61,0.53,0.95,1.23,138,17,1517,{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},20,15,19,18,22,23,21,35,26,25,13,27,16,28,30,36,31,48,49,61,58,66,60,71,57,53,51,84,5362,{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},59,317,143,34,146,46,106,247,68,43,29,86,179,98,100,214,50,178,54,166,431,347,360,374,199,259,152,104,194,2,3.53,{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},2.95,21.13,7.53,2.27,8.11,2.09,4.61,2.76,7.06,2.62,2.05,1.16,6.35,6.62,5.11,1.81,3.06,5.76,3.57,7.13,1.39,5.74,1.93,3.46,1,7.07,5.98,5.45,6.23,3.32,3.65,3.1,1.82,2.51,3.66,1.18,0.1,41,"JOURNAL",{"meta":223,"data":225},{"total":224},"1528",[226,370,710,941,1081,1180,1335,1499,1684,1798],{"id":227,"createTime":228,"updateTime":229,"relativeEntities":230,"slug":231,"properties":232,"entityType":242,"verifyStatus":243,"verifyTime":244,"verifyNote":245,"languages":22,"translateLanguages":246,"viewCount":23,"primaryUrl":248,"fullTextUrl":22,"authors":249,"publicationType":306,"publisherRelationship":307,"citationCount":22,"citationInfo":22,"publishDate":366,"publishYear":367,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":368,"openAccess":22,"references":22,"isForceReanalyzing":369},"619efb7c-3899-4d74-9bf1-0623cee48eec","2023-12-13T19:33:53.277+00:00","2026-09-06T13:13:54.374+00:00",[],"Comparison-between-Gibbs-free-energy-minimization-and-mass-action-law-for-a-multitemperature-plasma-with-application-to-nitrogen",{"abstract":233,"title":235,"references":238,"doi":240},{"EN":234},"This paper gives all the necessary physical equations to determine the composition and the thermodynamic properties in a multitemperature plasma utilizing two different methods: the first method is based on Gibbs free energy minimization and the second is based on the resolution of the mass action law. The lowering terms of the ionization potential and thermodynamic properties are given for a multitemperature plasma using the Debye-Hückel approximation. Numerical application is made to a nitrogen plasma.",{"EN":236,"VI":237},"Comparison between Gibbs free energy minimization and mass action law for a multitemperature plasma with application to nitrogen","So sánh giữa việc tối thiểu hóa năng lượng tự do Gibbs và định luật tác dụng khối lượng cho plasma đa nhiệt độ kèm ứng dụng cho nitơ",{"VOID":239},"P. Fauchais and E. Bourdin,J. Phys., Colloq. C3,38, C3-111 (1977).\nS. Bouillon, Thèse d’université, No. 48–95, Limoges (1995).\nZ. Koalaga, M. Abbaoui, and A. Lefort,J. Phys. D: Appl. Phys. 26, 393, (1993).\nJ. Aubreton, Thèse de Doctorat d’état, Université de Limoges (1985).\nH. W. Drawin,High Press.-High Temp., No. 2, 359 (1970).\nD. Karabournis, E. Drakakis, and B. Zacharapoulos,J. Phys. D 25, 188 (1992).\nZ. Koalaga, Thèse d’université, No. 343, Clermont-Ferrand (1991).\nB. Diu, C. Guthmann, D. Lederer, and B. Roulet,Physique Statistique, Hermann éditeurs (1989).\nM. Capitelli, E. Ficocelli, and E. Molinari, “Equilibrium Compositions and Thermodynamic Properties of Mixed Plasmas, III: Argon-Hydrogen at 10−2−103 Atmosphere between 2000 K and 35,000 K,” Bari (1970).\nP. Fauchais, K. Lapworth, and J. M. Baronnet, “First Report on Measurement of Temperature and Concentration of Excited Species in Optically Thin Plasmas,” International Union of Pure and Applied Chemistry (1979).\nM. Capitelli, E. Ficocelli, and E. Molinari, “Equilibrium Compositions and Thermodynamic Properties of Mixed Plasmas, H2-N2, Ar-N2, Xe-N2 Plasmas at One Atmosphere, between 5000 K and 35,000 K,” Bari (1970).\nK. S. Drellishak, D. P. Aeschliman, and Cambel Ali Bulent,Phys. Fluids 8, (1965).\nC. L. Pekeris,Phys. Rev. 45, 98 (1934).\nG. Herzberg,Molecular Spectra and Molecular Structure, I. Spectra of Diatomic Molecules, 2nd edition, D. Van Nostrand, Princeton (1950).\nK. P. Huber and G. Herzberg,Molecular Spectra and Molecular Structure, V. Constants of Diatomic Molecules, Van Nostrand Reinhold, Princeton (1979).\nB. Rosen, “Selected Constants, Spectroscopy Data Relative to Diatomic Molecules,”International Tables of Selected Constants, Pergamon Press (1970).\nP. Andre,IEEE Trans. Plasma Sci. 23, 453 (1995).\nP. Andre, M. Abbaoui, A. Lefort, and M. J. Parizet,Plasma Chem. Plasma Process. 16, (1996).\nA. V. Potapov,High Temp. 4, 48 (1966).\nL. Landau and E. Lifchitz,Physique Statistique, Edition de Moscou, MIR (1984).\nJ. P. Pelletier,Technique Numériques Appliquées au Calcul Scientifique, Masson, Paris (1982).\nW. B. White, S. M. Johnson, and G. B. Dantzig,J. Chem. Phys. 28, 751 (1958).",{"VOID":241},"10.1007\u002FBF02766816","PUBLICATION","VERIFIED","2025-01-15T17:37:44.998+00:00","Auto Verify",[247],"VI","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF02766816",[250,266,279,292],{"id":251,"sortIndex":23,"researcher":22,"roles":252,"affiliations":254,"properties":263,"displayName":265,"givenName":22,"familyName":22},"c852eed9-50c0-4db7-ad67-6b5a39c5c42d",[253],"AUTHOR",[255],{"id":256,"sortIndex":23,"affiliation":257,"properties":22},"62c16ddf-f5a3-4440-9e04-a626fc9eec9b",{"id":256,"createTime":22,"updateTime":22,"relativeEntities":258,"slug":22,"properties":259,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":262,"statistic":22},[],{"title":260},{"VI":261},"Laboratoire Arc Electrique et Plasmas Thermiques, URA CNRS 828, Université Blaise, Aubière Cedex, France",[],{"title":264},{"VI":265},"P. Andre",{"id":267,"sortIndex":207,"researcher":22,"roles":268,"affiliations":269,"properties":276,"displayName":278,"givenName":22,"familyName":22},"a41952e9-46d3-44ea-a954-27ee72c637a7",[253],[270],{"id":256,"sortIndex":23,"affiliation":271,"properties":22},{"id":256,"createTime":22,"updateTime":22,"relativeEntities":272,"slug":22,"properties":273,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":275,"statistic":22},[],{"title":274},{"VI":261},[],{"title":277},{"VI":278},"M. Abbaoui",{"id":280,"sortIndex":180,"researcher":22,"roles":281,"affiliations":282,"properties":289,"displayName":291,"givenName":22,"familyName":22},"b07767d3-fbff-45f9-9cc9-d54159f12411",[253],[283],{"id":256,"sortIndex":23,"affiliation":284,"properties":22},{"id":256,"createTime":22,"updateTime":22,"relativeEntities":285,"slug":22,"properties":286,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":288,"statistic":22},[],{"title":287},{"VI":261},[],{"title":290},{"VI":291},"R. Bessege",{"id":293,"sortIndex":294,"researcher":22,"roles":295,"affiliations":296,"properties":303,"displayName":305,"givenName":22,"familyName":22},"027336fb-5824-4915-ad76-9bccced875bd",3,[253],[297],{"id":256,"sortIndex":23,"affiliation":298,"properties":22},{"id":256,"createTime":22,"updateTime":22,"relativeEntities":299,"slug":22,"properties":300,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":302,"statistic":22},[],{"title":301},{"VI":261},[],{"title":304},{"VI":305},"A. Lefort","ARTICLE",{"url":248,"publisher":308,"properties":361},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":309,"slug":10,"properties":310,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":314,"manageAffiliations":330,"indexDatabases":341,"url":22,"thumbnailPath":22,"statistic":356,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":311,"title":312,"eissn":313},{"VOID":15},{"EN":17},{"VOID":13},[315,319,323,327],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":316,"label":317,"description":318,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":320,"label":321,"description":322,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":324,"label":325,"description":326,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":328,"label":329,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[331,336],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":332,"slug":22,"properties":333,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":335,"statistic":22},[],{"title":334},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":337,"slug":22,"properties":338,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":340,"statistic":22},[],{"title":339},{"EN":61},[63],[342,349],{"id":66,"indexDatabase":343,"url":77,"indexYears":78,"academicFieldIds":348,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":344,"label":345,"description":346,"key":74,"publicationTags":347,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":350,"url":99,"indexYears":22,"academicFieldIds":355,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":351,"label":352,"description":353,"key":95,"publicationTags":354,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":357,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":358,"totalCitation":149,"totalCitationByYear":359,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":360,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":362,"volume":364},{"VOID":363},"207-217",{"VOID":365},"17","1997-06-01",1997,[97,84],false,{"id":371,"createTime":372,"updateTime":373,"relativeEntities":374,"slug":375,"properties":376,"entityType":242,"verifyStatus":243,"verifyTime":385,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":386,"fullTextUrl":22,"authors":387,"publicationType":306,"publisherRelationship":438,"citationCount":134,"citationInfo":497,"publishDate":502,"publishYear":498,"citationAnalyzeStatus":503,"lastCitationAnalyze":504,"indexDatabases":505,"openAccess":22,"references":506,"isForceReanalyzing":369},"39a9078d-90ba-4b9a-8076-fee93bcbb05b","2024-01-25T23:54:55.788+00:00","2026-08-16T00:55:58.434+00:00",[],"Modelling-of-an-Atmospheric-Pressure-Nitrogen-Glow-Discharge-Operating-in-High-Gas-Temperature-Regimes",{"abstract":377,"title":379,"gsPaper":381,"doi":383},{"EN":378},"A model of an atmospheric pressure nitrogen glow discharge in high-gas temperature regimes is developed. The model considers a fairly complete set of chemical reactions, including several processes with the participation of electronically exited nitrogen atoms describing the energy balance and charged particles kinetic processes in the discharge. It is shown that the thermal dissociation of vibrationally excited molecules plays an essential role in the production of N(4\n                        S) atoms. The dominant ion within the investigated current range (52–187 mA) is the molecular N2\n                        + with an increasing proportion of atomic N+ towards high-current values. The process of production of electrons within the almost whole current range is controlled predominantly by associative ionization in atomic collisions N(2\n                        P) + N(2\n                        P) → N2\n                        + + e; being the N(2\n                        P) atoms mainly produced via quenching of N2(A\n                        3∑\n                  u\n                  +\n                ) electronically excited molecules by N(4\n                        S) atoms. The results of calculations are compared with the available experimental data and a good agreement is found.",{"EN":380},"Modelling of an Atmospheric Pressure Nitrogen Glow Discharge Operating in High-Gas Temperature Regimes",{"VOID":382},"[\"17359162222244576768\"]",{"VOID":384},"10.1007\u002Fs11090-016-9716-3","2024-05-03T11:02:24.939+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11090-016-9716-3",[388,403,425],{"id":389,"sortIndex":23,"researcher":22,"roles":390,"affiliations":391,"properties":400,"displayName":402,"givenName":22,"familyName":22},"e848f425-2768-4d37-98aa-589df99ba457",[253],[392],{"id":393,"sortIndex":23,"affiliation":394,"properties":22},"de4cbd1f-e11a-436e-8b37-07065c8ac70e",{"id":393,"createTime":22,"updateTime":22,"relativeEntities":395,"slug":22,"properties":396,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":399,"statistic":22},[],{"title":397},{"VI":398},"Grupo de Descargas Eléctricas, Departamento Ing. Electromecánica, Facultad Regional Venado Tuerto (UTN), Venado Tuerto, Argentina",[],{"title":401},{"VI":402},"L. Prevosto",{"id":404,"sortIndex":207,"researcher":22,"roles":405,"affiliations":406,"properties":422,"displayName":424,"givenName":22,"familyName":22},"ea0e1c4c-379a-44a6-8f77-ebb42e103b25",[253],[407,413],{"id":393,"sortIndex":23,"affiliation":408,"properties":22},{"id":393,"createTime":22,"updateTime":22,"relativeEntities":409,"slug":22,"properties":410,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":412,"statistic":22},[],{"title":411},{"VI":398},[],{"id":414,"sortIndex":207,"affiliation":415,"properties":421},"e8644710-12c4-49c8-9bd3-e315de15f3dc",{"id":414,"createTime":22,"updateTime":22,"relativeEntities":416,"slug":22,"properties":417,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":420,"statistic":22},[],{"title":418},{"VI":419},"Instituto de Física del Plasma (CONICET), Facultad de Ciencias Exactas y Naturales (UBA) Ciudad Universitaria Pab. I, Buenos Aires, Argentina",[],{},{"title":423},{"VI":424},"H. Kelly",{"id":426,"sortIndex":180,"researcher":22,"roles":427,"affiliations":428,"properties":435,"displayName":437,"givenName":22,"familyName":22},"209f0302-bee1-4175-9591-bc47f53dd4cd",[253],[429],{"id":393,"sortIndex":23,"affiliation":430,"properties":22},{"id":393,"createTime":22,"updateTime":22,"relativeEntities":431,"slug":22,"properties":432,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":434,"statistic":22},[],{"title":433},{"VI":398},[],{"title":436},{"VI":437},"B. Mancinelli",{"url":386,"publisher":439,"properties":492},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":440,"slug":10,"properties":441,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":445,"manageAffiliations":461,"indexDatabases":472,"url":22,"thumbnailPath":22,"statistic":487,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":442,"title":443,"eissn":444},{"VOID":15},{"EN":17},{"VOID":13},[446,450,454,458],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":447,"label":448,"description":449,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":451,"label":452,"description":453,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":455,"label":456,"description":457,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":459,"label":460,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[462,467],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":463,"slug":22,"properties":464,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":466,"statistic":22},[],{"title":465},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":468,"slug":22,"properties":469,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":471,"statistic":22},[],{"title":470},{"EN":61},[63],[473,480],{"id":66,"indexDatabase":474,"url":77,"indexYears":78,"academicFieldIds":479,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":475,"label":476,"description":477,"key":74,"publicationTags":478,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":481,"url":99,"indexYears":22,"academicFieldIds":486,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":482,"label":483,"description":484,"key":95,"publicationTags":485,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":488,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":489,"totalCitation":149,"totalCitationByYear":490,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":491,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":493,"volume":495},{"VOID":494},"973-992",{"VOID":496},"36",{"total":134,"publishYear":498,"statisticByYear":499},2016,{"2017":180,"2018":294,"2019":180,"2020":500,"2021":500,"2022":294,"2023":501,"2024":294,"2025":207},5,4,"2016-05-10","ERROR_IN_ANALYZE_CITATION","2026-08-16T00:55:58.433+00:00",[97,84],[507,510,513,516,519,522,525,528,531,534,537,540,543,546,549,552,555,558,564,567,570,573,576,579,582,585,588,591,594,597,600,603,606,609,612,616,620,623,626,629,632,635,638,641,644,647,650,653,656,659,662,665,668,671,674,677,680,683,686,689,692,695,698,701,704,707],{"id":22,"text":508,"url":22,"identifiers":509},"Park GY, Park SJ, Choi MY, Koo IG, Byun JH, Hong JW, Sim JY, Collins GJ, Lee JK (2012) Plasma Sources Sci Technol 21:21",{},{"id":22,"text":511,"url":22,"identifiers":512},"Fridman A, Chirokov A (2005) J Phys D Appl Phys 38:R1–R24",{},{"id":22,"text":514,"url":22,"identifiers":515},"Kunhardt EE (2000) IEEE Trans Plasma Sci 28:189–200",{},{"id":22,"text":517,"url":22,"identifiers":518},"Gambling WA, Edels H (1954) Br J Appl Phys 5:36–39",{},{"id":22,"text":520,"url":22,"identifiers":521},"Machala Z, Marode E, Laux CO, Kruger CH (2004) J Adv Oxid Technol 7:133–137",{},{"id":22,"text":523,"url":22,"identifiers":524},"Staack D, Farouk B, Gutsol A, Fridman A (2008) Plasma Sources Sci Technol 17:13",{},{"id":22,"text":526,"url":22,"identifiers":527},"Verreycken T, Schram DC, Leys C, Bruggeman P (2010) Plasma Sources Sci Technol 19:9",{},{"id":22,"text":529,"url":22,"identifiers":530},"Machala Z, Laux CO, Kruger CH (2005) IEEE Trans Plasma Sci 33:320–321",{},{"id":22,"text":532,"url":22,"identifiers":533},"Staack D, Farouk B, Gutsol A, Fridman A (2005) Plasma Sources Sci Technol 14:700–711",{},{"id":22,"text":535,"url":22,"identifiers":536},"Wilson A, Staack D, Farouk T, Gutsol A, Fridman A, Farouk B (2008) Plasma Sources Sci Technol 17:12",{},{"id":22,"text":538,"url":22,"identifiers":539},"Prevosto L, Kelly H, Mancinelli B, Chamorro JC, Cejas E (2015) Phys Plasmas 22:8",{},{"id":22,"text":541,"url":22,"identifiers":542},"Staack D, Farouk B, Gutsol A, Fridman A (2009) J Appl Phys 106:7",{},{"id":22,"text":544,"url":22,"identifiers":545},"Bayle P, Bayle M, Forn G (1985) J Phys D Appl Phys 18:2395–2415",{},{"id":22,"text":547,"url":22,"identifiers":548},"Hsu CC, Wu CY (2009) J Phys D Appl Phys 42:8",{},{"id":22,"text":550,"url":22,"identifiers":551},"Akishev Yu, Goossens O, Callebaut T, Leys C, Napartovich A, Trushkin N (2001) J Phys D Appl Phys 34:2875–2882",{},{"id":22,"text":553,"url":22,"identifiers":554},"Raizer YP (1991) Gas discharge physics. Springer, Berlin",{},{"id":22,"text":556,"url":22,"identifiers":557},"Boeuf JP, Kunhardt EE (1986) J Appl Phys 60:915–923",{},{"id":559,"text":560,"url":561,"identifiers":562},"4c68646b-0035-4279-8000-0006b275d4fa","Capitelli M, Ferreira CM, Gordiets BF, Osipov AI (2000) Plasma kinetics in atmospheric gases. Springer, New York","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":563},"10.1007\u002Fs10440-022-00541-7",{"id":22,"text":565,"url":22,"identifiers":566},"Velikhov EP, Golubev VS, Pashkin SV (1982) Sov Phys Usp 25:340–358",{},{"id":22,"text":568,"url":22,"identifiers":569},"Eletskii AV, Smirnov BM (1996) Phys Usp 39:1137–1156",{},{"id":22,"text":571,"url":22,"identifiers":572},"Akishev Y, Grushin M, Karalnik V, Petryakov A, Trushkin N (2010) J Phys D Appl Phys 43:11",{},{"id":22,"text":574,"url":22,"identifiers":575},"Kruger CH, Laux CO, Yu L, Packan DM, Pierrot L (2002) Pure Appl Chem 74:337–347",{},{"id":22,"text":577,"url":22,"identifiers":578},"Yu L, Laux CO, Packan DM, Kruger CH (2002) J Appl Phys 91:2678–2686",{},{"id":22,"text":580,"url":22,"identifiers":581},"Yalin AP, Laux CO, Kruger CH, Zare RN (2003) Plasma Sources Sci Technol 11:248–253",{},{"id":22,"text":583,"url":22,"identifiers":584},"Akishev Y, Grushin M, Karalnik V, Petryakov A, Trushkin N (2010) J Phys D Appl Phys 43:18",{},{"id":22,"text":586,"url":22,"identifiers":587},"Pierrot L, Yu L, Gessman RJ, Laux CO, Kruger CH (1999) In: Proceedings of 30th AIAA plasmadynamics and lasers conference, AIAA 99-3478, Norfolk, VA",{},{"id":22,"text":589,"url":22,"identifiers":590},"Hugill J, Saktioto T (2001) Plasma Sources Sci Technol 10:38–42",{},{"id":22,"text":592,"url":22,"identifiers":593},"Saporoschenko M (1965) Phys Rev 139:352–356",{},{"id":22,"text":595,"url":22,"identifiers":596},"Mehr FJ, Biondi MA (1969) Phys Rev 181:264–271",{},{"id":22,"text":598,"url":22,"identifiers":599},"Lin CL, Kaufman F (1971) J Chem Phys 55:3760–3770",{},{"id":22,"text":601,"url":22,"identifiers":602},"Naidis GV (2007) Plasma Sources Sci Technol 16:297–303",{},{"id":22,"text":604,"url":22,"identifiers":605},"Kossyi IA, Kostinsky AY, Matveyev AA, Silakov VP (1992) Plasma Sources Sci Technol 1:207–220",{},{"id":22,"text":607,"url":22,"identifiers":608},"Brunet H, RocaSerra J (1985) J Appl Phys 57:1574–1581",{},{"id":22,"text":610,"url":22,"identifiers":611},"Guerra V, Sa PA, Loureiro J (2004) Eur Phys J Appl Phys 28:125–152",{},{"id":22,"text":613,"url":614,"identifiers":615},"Hagelaar GJM, Pitchford LC (2005) Plasma Sources Sci. Technol. 14:722–733; freeware code BOLSIG+ version 07\u002F2015. www.bolsig.laplace.univ-tlse.fr (2015)","www.bolsig.laplace.univ-tlse.fr",{},{"id":22,"text":617,"url":618,"identifiers":619},"SIGLO database, http:\u002F\u002Fwww.lxcat.laplace.univ-tlse.fr. Retrieved June 4, 2013","http:\u002F\u002Fwww.lxcat.laplace.univ-tlse.fr",{},{"id":22,"text":621,"url":22,"identifiers":622},"Macheret SO, Rich JW (1993) Chem Phys 174:25–43",{},{"id":559,"text":624,"url":561,"identifiers":625},"Fridman AA, Kennedy LA (2004) Plasma physics and engineering. Taylor & Francis, London",{"doi":563},{"id":22,"text":627,"url":22,"identifiers":628},"Chernyi GG, Losev SA, Macheret SO, Potapkin BV (2002) Physical and chemical processes in gas dynamics: cross sections and rate constants, vol 1. AIAA, New York",{},{"id":22,"text":630,"url":22,"identifiers":631},"da Silva ML, Guerra V, Loureiro J (2007) Chem Phys 342:275–287",{},{"id":22,"text":633,"url":22,"identifiers":634},"Andre P, Abbaoui M, Lefort A, Parizet MJ (1996) Plasma Chem Plasma Process 16:379–397",{},{"id":559,"text":636,"url":561,"identifiers":637},"Huber KP, Herzberg G (1979) Molecular spectra and molecular structure: IV constants of diatomic molecules. Springer, Berlin",{"doi":563},{"id":22,"text":639,"url":22,"identifiers":640},"D’Ammando G, Colonna G, Pietanza LD, Capitelli M (2010) Spectrochim Acta Part B 65:603–605",{},{"id":22,"text":642,"url":22,"identifiers":643},"Bacri J, Medani A (1982) Phys C 112:101–118",{},{"id":22,"text":645,"url":22,"identifiers":646},"Benilov MS, Naidis GV (2003) J Phys D Appl Phys 36:1834–1841",{},{"id":22,"text":648,"url":22,"identifiers":649},"Boulos M, Fauchais P, Pfender E (1994) Thermal plasmas, fundamentals and applications, vol 1. Plenum Press, New York and London",{},{"id":22,"text":651,"url":22,"identifiers":652},"Popov NA (2001) Plasma Phys Rep 27:886–896",{},{"id":22,"text":654,"url":22,"identifiers":655},"Popov NA (2011) J Phys D Appl Phys 44:16",{},{"id":22,"text":657,"url":22,"identifiers":658},"Mintoussov EI, Pendleton SJ, Gerbault FG, Popov NA, Starikovskaia SM (2011) J Phys D Appl Phys 44:13",{},{"id":22,"text":660,"url":22,"identifiers":661},"Matveyev AA, Silakov VP (1999) Plasma Sources Sci Technol 8:162–178",{},{"id":22,"text":663,"url":22,"identifiers":664},"Itikawa Y (2006) J Phys Chem Ref Data 35:31–53",{},{"id":22,"text":666,"url":22,"identifiers":667},"Aleksandrov NL, Bazelyan EM, Kochetov IV, Dyatko NA (1997) J Phys D Appl Phys 30:1616–1624",{},{"id":22,"text":669,"url":22,"identifiers":670},"Brunet H, Vincent P, RocaSerra J (1983) J Appl Phys 54:4951–4957",{},{"id":22,"text":672,"url":22,"identifiers":673},"Cao YS, Johnsen R (1991) J Chem Phys 95:7356–7359",{},{"id":22,"text":675,"url":22,"identifiers":676},"Bourdon A, Vervisch P (1996) Phys Rev E 54:1888–1898",{},{"id":22,"text":678,"url":22,"identifiers":679},"Dunn MG, Lordi JA (1970) AIAA J. 8:339–345",{},{"id":22,"text":681,"url":22,"identifiers":682},"Piper LG (1988) J Chem Phys 88:6911–6921",{},{"id":22,"text":684,"url":22,"identifiers":685},"Hays GN, Oskam HJ (1973) J Chem Phys 59:1507–1516",{},{"id":22,"text":687,"url":22,"identifiers":688},"Piper LG (1988) J Chem Phys 88:231–232",{},{"id":22,"text":690,"url":22,"identifiers":691},"Clark WG, Setser DW (1980) J Chem Phys 84:2225–2233",{},{"id":22,"text":693,"url":22,"identifiers":694},"Tatarova E, Dias FM, Gordiets B, Ferreyra CM (2005) Plasma Sources Sci Technol 14:19–31",{},{"id":22,"text":696,"url":22,"identifiers":697},"Piper LG (1989) J Chem Phys 90:7087–7095",{},{"id":22,"text":699,"url":22,"identifiers":700},"Heidner RF, Sutton DG, Suchard SN (1976) Chem Phys Lett 37:243–248",{},{"id":22,"text":702,"url":22,"identifiers":703},"Piper LG (1987) J Chem Phys 87:1625–1629",{},{"id":22,"text":705,"url":22,"identifiers":706},"Gordiets BF, Ferreira CM, Guerra VL, Loureiro JMAH, Nahorny J, Pagnon D, Touzeau M, Vialle M (1995) IEEE Trans Plasma Sci 23:750–768",{},{"id":22,"text":708,"url":22,"identifiers":709},"Gordiets B, Ferreira CM, Pinheiro MJ, Ricard A (1998) Plasma Sources Sci Technol 7:363–378",{},{"id":711,"createTime":712,"updateTime":713,"relativeEntities":714,"slug":715,"properties":716,"entityType":242,"verifyStatus":243,"verifyTime":727,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":728,"fullTextUrl":22,"authors":729,"publicationType":306,"publisherRelationship":876,"citationCount":23,"citationInfo":935,"publishDate":938,"publishYear":936,"citationAnalyzeStatus":503,"lastCitationAnalyze":939,"indexDatabases":940,"openAccess":22,"references":22,"isForceReanalyzing":369},"ef03746d-3cd3-44fa-8138-dd1b0e778c2b","2024-01-08T12:11:28.411+00:00","2026-07-30T15:18:09.905+00:00",[],"Introduction-of-Primary-Amino-Groups-on-Poly-ethylene-terephthalate-Surfaces-by-Ammonia-and-a-Mix-of-Nitrogen-and-Hydrogen-Plasma",{"abstract":717,"title":719,"gsPaper":721,"references":723,"doi":725},{"EN":718},"With the aim of introducing primary amino groups on the surface of poly(ethylene terephthalate) (PET), two methods were compared—the use of ammonia or a combination of nitrogen and hydrogen low-pressure microwave plasma. Several plasma parameters were optimized on the reactor to increase the –NH2 surface density, which was estimated by colorimetric titration and X-ray photoelectron spectroscopy (XPS). These techniques show that whatever the plasma treatment, almost 2 –NH2\u002Fnm² are incorporated on PET films. Emission spectroscopy highlighted a correlation between the density of primary amino groups and the ratio between an NH peak intensity and an Ar peak intensity (INH\u002FIAr). Variation in surface hydrophilicity with aging in air after plasma treatment was monitored with contact angle measurements and showed a hydrophobic recovery. This was confirmed by XPS, which suggests also that surfaces treated by NH3 plasma are more stable than surfaces treated by N2\u002FH2.",{"EN":720},"Introduction of Primary Amino Groups on Poly(ethylene terephthalate) Surfaces by Ammonia and a Mix of Nitrogen and Hydrogen Plasma",{"VOID":722},"[\"6720664664230607529\"]",{"VOID":724},"Sanchez-Arrieta N, Martinez de Ilarduya A, Alla A, Munoz-Guerra S (2005) Eur Polym J 41:1493\nGottenbos B, van der Mei HC, Busscher HJ (2000) J Biomed Mater Res 50:208\nHuang CJ, Chang TC (2004) J Appl Polym Sci 91:270\nListon EM, Martinu M, Wertheimer MR (1993) J Adhes Sci Technol 7:1091\nBech L, Meylheuc T, Lepoittevin B, Roger P (2007) J Polym Sci Pol Chem 45:2172\nZhang H, Shouro D, Itoh K, Takata T, Jiang Y (2008) J Appl Polym Sci 108:351\nTruica-Marasescu F, Wertheimer MR (2008) Plasma Process Polym 5:44\nRenaudie L, Le Narvor C, Lepleux E, Roger P (2007) Biomacromolecules 8:679\nDesmet T, Morent R, Geyter N, Leys C, Schacht E, Dubruel P (2009) Biomacromolecules 10:2351\nGupta B, Plummer C, Bisson I, Frey P, Hilborn J (2002) Biomaterials 23:863\nHuh M, Kang I, Lee D, Kim W, Ho Lee D, Park L, Eun Min K, Ho Seo K (2001) J Appl Polym Sci 81:2769\nKull KR, Steen ML, Fisher ER (2005) J Membr Sci 246:203\nSiow K, Britcher L, Kumar S, Griesser H (2006) Plasma Process Polym 3:392\nTruica-Marasescu F, Guimond S, Jedrzejowski P, Wertheimer MR (2005) Nucl Instr Meth B 236:117\nMuller M, Oehr C (1999) Surf Coat Tech 116:802\nMeyer-Plath AA, Finke B, Schroder K, Ohl A (2003) Surf Coat Tech 174:877\nWang M, Chang Y, Poncin-Epaillard F (2003) Langmuir 19:8325\nGrace JM, Gerenser LJ (2003) J Disper Sci Technol 24:305\nSchröder K, Meyer-Plath A, Keller D, Besch W, Babucke G, Ohl A (2001) Contrib Plasm Phys 41:562\nFinke B, Schröder K, Ohl A (2008) Plasma Process Polym 5:386\nGirardeau C, Zammatteo N, Art M, Gillon B, Pireaux JJ, Caudano R (1996) Plasmas Polym 7:327\nLub J, van Vroonhoven FCBM, Bruninx E, Benninghoven A (1989) Polymer 30:40\nNagayama Y, Takahagi T, Soeda F, Hatada K, Nagaoka S, Suzuki J, Ishitani A (1988) J Polymer Sci A: Polymer Chem 26:559\nMeyer-Plath A, Schröder K, Finke B, Ohl A (2003) Vacuum 71:391\nFavia P, Stendardo MV, d’Agostino R (1996) Plasmas Polym 1:91\nHayat U, Tinsley A, Calder MR, Clarke DJ (1992) Biomaterials 13:801\nEverhart DS, Reilley CN (1981) Anal Chem 53:665\nRolland L, Peignon MC, Cardinaud CH, Turban G (2000) Microelectron Eng 53:375\nNath N, Hyun J, Ma H, Chilkoti A (2004) Surf Sci 570:98\nBechu S, Boisse-Laporte C, Leprince P, Marec J (1997) J Vac Sci Technol A 15:668\nBennissad N, Boisse-Laporte C, Vallée C, Granier A, Goullet A (1999) Surf Coat Tech 116:868\nBech L, Lepoittevin B, El Achhab A, Lepleux E, Teulé-Gay L, Boisse-Laporte C, Roger P (2007) Langmuir 23:10348\nMoisan M, Zakrzewski Z (1991) J Phys D Appl Phys 24:1025\nBoisse-Laporte C, Bénissad N, Béchu S (1998) J Phys IV France 8:187\nVautrin C, Roux F, Boisse-Laporte C, Pastol JL, Chausse A (2002) J Mater Chem 12:2318\nCoburn JW, Chen MJ (1980) J Appl Phys 51:3134\nd’Agostino R, Cramarossa F, De Benedictis S, Ferraro G (1981) J Appl Phys 52:1259\nRicard A, Henriques J, Cousty S, Villeger S, Amorim J (2007) Plasma Process Polym 4:S965\nGhasemi M, Minier M, Tatoulian M, Aresfi-Khonsari F (2007) Langmuir 23:11554\nKakabakos S, Tyllianakis P, Evangelatos G, Ithakissios D (1994) Biomaterials 15:289\nWang B, Oleschuk RD, Horton JH (2005) Langmuir 21:1290\nHirohata Y, Tsuchiya N, Hino T (2001) Appl Surf Sci 169:612\nBoucher C, Ruiz JC, Thibault M, Buschmann MD, Wertheimer MR, Jolicoeur M, Durocher Y, De Crescenzo G (2010) Biomaterials 31:7021\nRiccardi C, Barni R, Selli E, Mazzone G, Massafre MR, Marcandalli B, Poletti G (2003) Appl Surf Sci 211:386\nVasquez-Borucki S, Achete CA, Jacod W (2001) Surf Coat Tech 138:256\nCottrell TL (ed) (1954) The Strengths of Chemical Bonds. Butterworths Scientific Publications, London, p 310\nOlander B, Wirsen A, Albertsson A (2003) Biomacromolecules 4:145\nInagaki K, Narushim K, Tuchida N, Miyazaki K (2004) J Polym Sci Pol Phys 42:3727\nFowkes FM (1962) J Phys Chem A 66:382\nGachter R, Muller H (eds) (1990) Plastics Additives Handbooks. Hanser, Verlag\nPlacinta G, Arefi-Khonsari F, Gheorghiu M, Amouroux J, Popa G (1996) J Appl Polym Sci 66:1367\nBhat NV, Upadhyay DJ (2002) J Appl Polym Sci 86:925\nGarbassi F, Morra M (1994) Polym Surf Phys Tech. Wiley, Chichester",{"VOID":726},"10.1007\u002Fs11090-011-9345-9","2024-06-24T20:29:35.038+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11090-011-9345-9",[730,754,774,796,818,833,855],{"id":731,"sortIndex":23,"researcher":22,"roles":732,"affiliations":733,"properties":751,"displayName":753,"givenName":22,"familyName":22},"2185ff69-af9b-4d00-8703-6725e972741a",[253],[734,742],{"id":735,"sortIndex":23,"affiliation":736,"properties":22},"c92f2c1c-e244-4a9a-a25c-fb617de86ba4",{"id":735,"createTime":22,"updateTime":22,"relativeEntities":737,"slug":22,"properties":738,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":741,"statistic":22},[],{"title":739},{"VI":740},"Laboratoire de Chimie Organique Multifonctionnelle, Equipe de Glycochimie Moléculaire et Macromoléculaire, Institut de Chimie Moléculaire et des Matériaux d’Orsay, UMR 8182, Bâtiment 420, Université Paris-Sud 11, Orsay, France",[],{"id":743,"sortIndex":207,"affiliation":744,"properties":750},"740e0194-fce5-4c50-a955-37f16ddf5081",{"id":743,"createTime":22,"updateTime":22,"relativeEntities":745,"slug":22,"properties":746,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":749,"statistic":22},[],{"title":747},{"VI":748},"CNRS, Orsay, France",[],{},{"title":752},{"VI":753},"Jessie Casimiro",{"id":755,"sortIndex":207,"researcher":22,"roles":756,"affiliations":757,"properties":771,"displayName":773,"givenName":22,"familyName":22},"6734e1e6-b67f-4ad5-9ce2-92e30e5782a6",[253],[758,764],{"id":735,"sortIndex":23,"affiliation":759,"properties":22},{"id":735,"createTime":22,"updateTime":22,"relativeEntities":760,"slug":22,"properties":761,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":763,"statistic":22},[],{"title":762},{"VI":740},[],{"id":743,"sortIndex":207,"affiliation":765,"properties":770},{"id":743,"createTime":22,"updateTime":22,"relativeEntities":766,"slug":22,"properties":767,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":769,"statistic":22},[],{"title":768},{"VI":748},[],{},{"title":772},{"VI":773},"Bénédicte Lepoittevin",{"id":775,"sortIndex":180,"researcher":22,"roles":776,"affiliations":777,"properties":793,"displayName":795,"givenName":22,"familyName":22},"d8c35128-ac57-4d4e-b058-aa3ffd314a52",[253],[778,784],{"id":743,"sortIndex":23,"affiliation":779,"properties":22},{"id":743,"createTime":22,"updateTime":22,"relativeEntities":780,"slug":22,"properties":781,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":783,"statistic":22},[],{"title":782},{"VI":748},[],{"id":785,"sortIndex":207,"affiliation":786,"properties":792},"9b5821fc-7bdd-460d-be20-30d14e5ea0c0",{"id":785,"createTime":22,"updateTime":22,"relativeEntities":787,"slug":22,"properties":788,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":791,"statistic":22},[],{"title":789},{"VI":790},"Laboratoire de physique des gaz et des plasmas, UMR 8578, Bâtiment 210, Université Paris-Sud 11, Orsay, France",[],{},{"title":794},{"VI":795},"Caroline Boisse-Laporte",{"id":797,"sortIndex":294,"researcher":22,"roles":798,"affiliations":799,"properties":815,"displayName":817,"givenName":22,"familyName":22},"e33bc42b-07f2-4892-aa07-ff757e06569d",[253],[800,806],{"id":743,"sortIndex":23,"affiliation":801,"properties":22},{"id":743,"createTime":22,"updateTime":22,"relativeEntities":802,"slug":22,"properties":803,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":805,"statistic":22},[],{"title":804},{"VI":748},[],{"id":807,"sortIndex":207,"affiliation":808,"properties":814},"4e84d128-49d0-4306-a711-029727d2a074",{"id":807,"createTime":22,"updateTime":22,"relativeEntities":809,"slug":22,"properties":810,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":813,"statistic":22},[],{"title":811},{"VI":812},"Laboratoire d’Etude des Matériaux Hors Equilibre, Institut de Chimie Moléculaire et Matériaux d’Orsay, UMR 8182, Bâtiment 410, Université Paris-Sud 11, Orsay Cedex, France",[],{},{"title":816},{"VI":817},"Marie-Geneviève Barthés-Labrousse",{"id":819,"sortIndex":501,"researcher":22,"roles":820,"affiliations":821,"properties":830,"displayName":832,"givenName":22,"familyName":22},"6120b69c-f6ec-4272-95d9-71916eab52c4",[253],[822],{"id":823,"sortIndex":23,"affiliation":824,"properties":22},"e2d46324-fb31-487c-a9d9-c148801e1aa1",{"id":823,"createTime":22,"updateTime":22,"relativeEntities":825,"slug":22,"properties":826,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":829,"statistic":22},[],{"title":827},{"VI":828},"CEA, IRAMIS, Laboratoire d’Electronique Moléculaire, SPEC, Gif sur Yvette, France",[],{"title":831},{"VI":832},"Pascale Jegou",{"id":834,"sortIndex":500,"researcher":22,"roles":835,"affiliations":836,"properties":852,"displayName":854,"givenName":22,"familyName":22},"4cf243b4-37cb-4045-99ba-4d756d9d209f",[253],[837,843],{"id":743,"sortIndex":23,"affiliation":838,"properties":22},{"id":743,"createTime":22,"updateTime":22,"relativeEntities":839,"slug":22,"properties":840,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":842,"statistic":22},[],{"title":841},{"VI":748},[],{"id":844,"sortIndex":207,"affiliation":845,"properties":851},"f818da93-14f1-48eb-9b4f-3879c6d6e34c",{"id":844,"createTime":22,"updateTime":22,"relativeEntities":846,"slug":22,"properties":847,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":850,"statistic":22},[],{"title":848},{"VI":849},"Institut de Chimie Moléculaire et des Matériaux d’Orsay, UMR 8182, Bâtiment 410, Université Paris-Sud 11, Orsay, France",[],{},{"title":853},{"VI":854},"François Brisset",{"id":856,"sortIndex":857,"researcher":22,"roles":858,"affiliations":859,"properties":873,"displayName":875,"givenName":22,"familyName":22},"c34ec5f7-0f15-4376-a18c-c1c12be8443b",6,[253],[860,866],{"id":735,"sortIndex":23,"affiliation":861,"properties":22},{"id":735,"createTime":22,"updateTime":22,"relativeEntities":862,"slug":22,"properties":863,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":865,"statistic":22},[],{"title":864},{"VI":740},[],{"id":743,"sortIndex":207,"affiliation":867,"properties":872},{"id":743,"createTime":22,"updateTime":22,"relativeEntities":868,"slug":22,"properties":869,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":871,"statistic":22},[],{"title":870},{"VI":748},[],{},{"title":874},{"VI":875},"Philippe Roger",{"url":728,"publisher":877,"properties":930},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":878,"slug":10,"properties":879,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":883,"manageAffiliations":899,"indexDatabases":910,"url":22,"thumbnailPath":22,"statistic":925,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":880,"title":881,"eissn":882},{"VOID":15},{"EN":17},{"VOID":13},[884,888,892,896],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":885,"label":886,"description":887,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":889,"label":890,"description":891,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":893,"label":894,"description":895,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":897,"label":898,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[900,905],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":901,"slug":22,"properties":902,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":904,"statistic":22},[],{"title":903},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":906,"slug":22,"properties":907,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":909,"statistic":22},[],{"title":908},{"EN":61},[63],[911,918],{"id":66,"indexDatabase":912,"url":77,"indexYears":78,"academicFieldIds":917,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":913,"label":914,"description":915,"key":74,"publicationTags":916,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":919,"url":99,"indexYears":22,"academicFieldIds":924,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":920,"label":921,"description":922,"key":95,"publicationTags":923,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":926,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":927,"totalCitation":149,"totalCitationByYear":928,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":929,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":931,"volume":933},{"VOID":932},"305-323",{"VOID":934},"32",{"total":23,"publishYear":936,"statisticByYear":937},2011,{},"2011-12-23","2026-07-30T15:18:09.904+00:00",[97,84],{"id":942,"createTime":943,"updateTime":944,"relativeEntities":945,"slug":946,"properties":947,"entityType":242,"verifyStatus":243,"verifyTime":958,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":959,"fullTextUrl":22,"authors":960,"publicationType":306,"publisherRelationship":1015,"citationCount":23,"citationInfo":1074,"publishDate":1077,"publishYear":1075,"citationAnalyzeStatus":1078,"lastCitationAnalyze":1079,"indexDatabases":1080,"openAccess":22,"references":22,"isForceReanalyzing":369},"05ff6bb4-3752-4484-8166-32f669977e6f","2024-01-04T07:33:49.556+00:00","2026-07-26T14:50:45.752+00:00",[],"On-the-plasma-chemistry-of-the-C-H-system-relevant-to-diamond-deposition-processes",{"abstract":948,"title":950,"gsPaper":952,"references":954,"doi":956},{"EN":949},"The chemistry of hydrogen-rich hydrocarbon-hydrogen mixtures is of primary interest for the understanding of the low-pressure synthesis of diamond. We per formed experiments under well-defined conditions like temperature, pressure, initial gas composition, etc. The gas composition at the end of a flow reactor was analyzed by a calibrated mass spectrometer and compared to results obtained from the Chemkin computer code. Residence thne in the reactor as well as other process parameters were similar to those of diamond-growing PA CVD processes performed earlier with the same experimental set-rip. Modeling and experiment under isothermal conditions show quantitative agreement. We realized time-resolved mass .spectrometry by means of a helium-flushed gas sampling probe. There is evidence that the commonly used reaction kinetic data for the dissociation C2H6 (+ M) ⇔ 2CH,(+M) gives                                                                   2 too small C2H4 concentrations for hydrogen-rich conditions. This could be attributed to the poorly known third-body efficiencies of the H2 molecules compared to Ar or C2H6 from which kinetic data are commonly derived.",{"EN":951},"On the plasma chemistry of the C\u002FH system relevant to diamond deposition processes",{"VOID":953},"[\"2774681309217319037\"]",{"VOID":955},"Y. Muranaka, H. Yamashita, and H. Miyadera,Diamond Relat. Mater. 3, 313–318 (1994).\nK. E. Spear,J. Am. Ceram. Soc. 72, 171–191 (1989).\nK. E. Spear and J. P. Dismukes, eds.,Synthetic Diamond: Emerging CVD Science and Technology, Wiley, New York (1994).\nL. Störi, T. Lang, J. Laimer, and H. Störi, Plasma chemistry of hydrogen-hydrocarbonmixtures, ESCAMPIG 92, L. Tsendin, ed., Europhysics Conf. Abstracts 16F, 459–460 (1992).\nJ. Laimer, R. Posch, G. Misslinger, C. G. Schwärzler, and H. Störi, “Determination of absolute hydrogen atom densities by Lyman-alpha-absorption”Meas. Sci. Technol. 6, 1413–1421 (1995).\nU. Meier, K. Kohse-Honinghaus, L. Schafer, and C. P. Klages,Appl. Opt. 29, 4993–4999 (1990).\nJ. Laimer and S. Matsumoto,Plasma Chem. Plasma Process. 14, 117–130 (1994).\nT. Lang, J. Laimer, and H. Störi.Diamond Relat. Mater. 3, 470–475 (1994).\nW. Zhu, A. Inspektor, A. R. Badzian, T. McKenna, and R. Messier,J. Appl. Phys. 68, 1489–1496 (1990).\nR. J. Kee, F. M. Rupley, and J. A. Miller, “CHEMKIN-II: A Fortran chemical kinetics package for the analysis of gas-phase chemical kinetics,” Sandia Rep. 89-8009 UC-401, 1989, Sandia National Laboratories, Livermore, California.\nJ. Laimer, W. Putz, H. Störi, P. Janz, and H. Winkler,Refract. Met. Hard Mater., in press.\nC. G. Schwiirzler, “Massenspektrometrische Untersuchungen an KohlenwasserstoffWasserstoff-Plasmen,” Master's thesis, Technische Universität, Vienna (1993).\nJ. Laimer, O. Schnabl, C. G. Schwärzler, and H. Störi, “Time-resolved mass spectrometry in rough vacuum environment,” J. Vac. Sci. Teelmol. A, submitted.\nB. J. Wood and H. Wise,J. Phys. Chem. 66, 1049 (1962).\nS. H. Harris and A. M. Weiner,J. Appl. Phys. 67, 6520–6526 (1990).\nJ. Geddes, R. W. McCullough, A. Donnelly, and H. B. Gilbody,Plasma Sources Sci. Technol. 2, 93–99 (1993).\nD. L. Baulch, C. J. Cobos, R. A. Cox, C. Esser, P. Frank, T. Just, J. A. Kerr, M. J. Pilling, J. Troe, R. W. Walker, and J. Warnatz,J. Chem. Phys. Ref. Data 21, 411–749 (1992).\nE. Meeks, R. J. Kee, D. S. Dandy, and M. E. Coltrin,Combust. Flame 92, 144–160 (1993).",{"VOID":957},"10.1007\u002FBF01570176","2024-08-31T03:19:24.003+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01570176",[961,976,989,1002],{"id":962,"sortIndex":23,"researcher":22,"roles":963,"affiliations":964,"properties":973,"displayName":975,"givenName":22,"familyName":22},"3f966f81-022e-466e-97c4-51409edc64ae",[253],[965],{"id":966,"sortIndex":23,"affiliation":967,"properties":22},"d105fc38-c92f-4e03-9fa8-a9a7f43b6683",{"id":966,"createTime":22,"updateTime":22,"relativeEntities":968,"slug":22,"properties":969,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":972,"statistic":22},[],{"title":970},{"VI":971},"Institut für Allgemeine Physik, TU Wien, Wien, Austria",[],{"title":974},{"VI":975},"C. G. Schwärzler",{"id":977,"sortIndex":207,"researcher":22,"roles":978,"affiliations":979,"properties":986,"displayName":988,"givenName":22,"familyName":22},"6935c734-e868-488e-babd-c68e937c2426",[253],[980],{"id":966,"sortIndex":23,"affiliation":981,"properties":22},{"id":966,"createTime":22,"updateTime":22,"relativeEntities":982,"slug":22,"properties":983,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":985,"statistic":22},[],{"title":984},{"VI":971},[],{"title":987},{"VI":988},"O. Schnabl",{"id":990,"sortIndex":180,"researcher":22,"roles":991,"affiliations":992,"properties":999,"displayName":1001,"givenName":22,"familyName":22},"100a184f-63e2-4196-9d02-53f6340f0439",[253],[993],{"id":966,"sortIndex":23,"affiliation":994,"properties":22},{"id":966,"createTime":22,"updateTime":22,"relativeEntities":995,"slug":22,"properties":996,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":998,"statistic":22},[],{"title":997},{"VI":971},[],{"title":1000},{"VI":1001},"J. Laimer",{"id":1003,"sortIndex":294,"researcher":22,"roles":1004,"affiliations":1005,"properties":1012,"displayName":1014,"givenName":22,"familyName":22},"0e6faae9-f70d-490c-bca3-75bdb34839a8",[253],[1006],{"id":966,"sortIndex":23,"affiliation":1007,"properties":22},{"id":966,"createTime":22,"updateTime":22,"relativeEntities":1008,"slug":22,"properties":1009,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1011,"statistic":22},[],{"title":1010},{"VI":971},[],{"title":1013},{"VI":1014},"H. Störi",{"url":959,"publisher":1016,"properties":1069},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1017,"slug":10,"properties":1018,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1022,"manageAffiliations":1038,"indexDatabases":1049,"url":22,"thumbnailPath":22,"statistic":1064,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1019,"title":1020,"eissn":1021},{"VOID":15},{"EN":17},{"VOID":13},[1023,1027,1031,1035],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1024,"label":1025,"description":1026,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1028,"label":1029,"description":1030,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1032,"label":1033,"description":1034,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1036,"label":1037,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1039,1044],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1040,"slug":22,"properties":1041,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1043,"statistic":22},[],{"title":1042},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1045,"slug":22,"properties":1046,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1048,"statistic":22},[],{"title":1047},{"EN":61},[63],[1050,1057],{"id":66,"indexDatabase":1051,"url":77,"indexYears":78,"academicFieldIds":1056,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1052,"label":1053,"description":1054,"key":74,"publicationTags":1055,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1058,"url":99,"indexYears":22,"academicFieldIds":1063,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1059,"label":1060,"description":1061,"key":95,"publicationTags":1062,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1065,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1066,"totalCitation":149,"totalCitationByYear":1067,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1068,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1070,"volume":1072},{"VOID":1071},"173-185",{"VOID":1073},"16",{"total":23,"publishYear":1075,"statisticByYear":1076},1996,{},"1996-06-01","DONE_ANALYZE_CITATION","2026-07-26T14:50:45.751+00:00",[97,84],{"id":1082,"createTime":1083,"updateTime":1084,"relativeEntities":1085,"slug":1086,"properties":1087,"entityType":242,"verifyStatus":243,"verifyTime":1098,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1099,"fullTextUrl":22,"authors":1100,"publicationType":306,"publisherRelationship":1116,"citationCount":22,"citationInfo":22,"publishDate":1175,"publishYear":1176,"citationAnalyzeStatus":1177,"lastCitationAnalyze":1178,"indexDatabases":1179,"openAccess":22,"references":22,"isForceReanalyzing":369},"8ab602a4-194b-47fa-815c-57003d8dc46a","2024-01-09T10:52:03.346+00:00","2026-07-22T19:49:47.461+00:00",[],"Production-of-Nickel-by-Cold-Hydrogen-Plasma-Role-of-Active-Oxygen",{"abstract":1088,"title":1090,"gsPaper":1092,"references":1094,"doi":1096},{"EN":1089},"A new cold hydrogen plasma (CHP) technology for producing various metals and alloys from their oxides\u002Fores has been recently introduced. CHP generates excited species, which lower the thermodynamic and kinetic barriers to reduction, making the reduction of metal oxides\u002Fores easier and faster. Among the metal oxides, nickel (Ni) could be produced very quickly from nickel oxide (NiO), as reported in a recent publication (\n                https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-021-10194-3\n                \n              ). The presence of excess or active oxygen was ascribed to the faster reduction. For the reduction of metal oxides, thermodynamics and kinetics are well-known reduction pathways. However, the influence of active oxygen on thermodynamics and kinetics was never reported before. As a result, the purpose of the study was to investigate the effect of active oxygen on the thermodynamics and kinetics of NiO reduction. The active oxygen in NiO has been found to increase the thermodynamic potential by significantly lowering the Gibbs standard free energy by a significant amount. Further, it also decreases the NiO bond stability. The active oxygen also provides kinetic advantage by creating more area for diffusion. These characteristics accelerate the NiO reduction to the point where a 7.5 × 10–6 kg pellet could be reduced in 1200 s using 600 W microwave power and a hydrogen flow rate of 1.166 × 10–6 m3 s−1, opening the possibility of NiO reduction by CHP to be scaled up.",{"EN":1091},"Production of Nickel by Cold Hydrogen Plasma: Role of Active Oxygen",{"VOID":1093},"[]",{"VOID":1095},"Oxley A, Smith ME, Caceres O (2016) Why heap leach nickel laterites? Miner Eng 88:53–60. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2015.09.018\nPetrus HTBM, Putera ADP, Sugiarto E et al (2019) Kinetics on roasting reduction of limonitic laterite ore using coconut-charcoal and anthracite reductants. Miner Eng 132:126–133. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2018.11.043\nOliveira C, Freitas FM, Abreu GJP et al (2014) Optical measurements of atmospheric pressure direct current He\u002FH2 microplasma in open air for surface modification. Am J Condens Matter Phys 4:19–27. https:\u002F\u002Fdoi.org\u002F10.5923\u002Fs.ajcmp.201401.03\nZhu D, Pan L, Guo Z et al (2019) Utilization of limonitic nickel laterite to produce ferronickel concentrate by the selective reduction-magnetic separation process. Adv Powder Technol 30:451–460. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apt.2018.11.024\nMa B, Wang C, Yang W et al (2013) Screening and reduction roasting of limonitic laterite and ammonia-carbonate leaching of nickel-cobalt to produce a high-grade iron concentrate. Miner Eng 50–51:106–113. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2013.06.014\nGarces-Granda A, Lapidus GT, Restrepo-Baena OJ (2018) The effect of calcination as pre treatment to enhance the nickel extraction from low-grade laterites. Miner Eng 120:127–131. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2018.02.019\nKaya S, Topkaya YA (2011) High pressure acid leaching of a refractory lateritic nickel ore. Miner Eng 24:1188–1197. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2011.05.004\nPickles CA, Anthony W (2018) Thermodynamic modelling of the reduction of a saprolitic laterite ore by methane. Miner Eng 120:47–59. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2018.02.006\nMeshram P, Abhilash PBD (2019) Advanced review on extraction of nickel from primary and secondary sources. Miner Process Extr Metall Rev 40:157–193. https:\u002F\u002Fdoi.org\u002F10.1080\u002F08827508.2018.1514300\nRodrigues F, Pickles CA, Peacey J et al (2017) Factors affecting the upgrading of a nickeliferous limonitic laterite ore by reduction roasting, thermal growth and magnetic separation. Minerals 7:176. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fmin7090176\nMoats MS, Davenport WG (2014) Nickel and cobalt production. Treatise on process metallurgy, vol 3. Elsevier, Amsterdam, pp 625–669\nBurkin AR (1987) Extractive metallurgy of nickel. Wiley, New York\nElliott R, Pickles CA, Peacey J (2017) Ferronickel particle formation during the carbothermic reduction of a limonitic laterite ore. Miner Eng 100:166–176. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2016.10.020\nPickles CA, Forster J, Elliott R (2014) Thermodynamic analysis of the carbothermic reduction roasting of a nickeliferous limonitic laterite ore. Miner Eng 65:33–40. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2014.05.006\nYang J, Zhang G, Ostrovski O, Jahanshahi S (2019) Selective reduction of an Australian garnieritic laterite ore. Miner Eng 131:79–89. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2018.10.018\nRao M, Li G, Jiang T et al (2013) Carbothermic reduction of nickeliferous laterite ores for nickel pig iron production in China: a review. JOM 65:1573–1583. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11837-013-0760-7\nSridhar S, Sichen DU, Seetharaman S (1994) Investigation of the kinetics of reduction of nickel oxide and nickel aluminate by hydrogen. Zeitschrift fuer Met 85:616–620\nde Alvarenga OV, dos Santos CG, de Albuquerque BE (2019) Assessing the influence of NaCl on the reduction of a siliceous laterite nickel ore under caron process conditions. Metall Mater Trans B Process Metall Mater Process Sci 50(3):1309–1321. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-019-01552-w\nVisweswaran S, Venkatachalapathy R, Haris M, Murugesan R (2020) Structural, morphological, optical and magnetic properties of sprayed NiO thin films by perfume atomizer. Appl Phys A Mater Sci Process 126:1–12. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00339-020-03709-w\nGomaa MM, Yazdi GR, Schmidt S et al (2017) Effect of precursor solutions on the structural and optical properties of sprayed NiO thin films. Mater Sci Semicond Process 64:32–38. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mssp.2017.03.009\nFedorov AV, Kukushkin RG, Yeletsky PM et al (2020) Temperature-programmed reduction of model CuO, NiO and mixed CuO–NiO catalysts with hydrogen. J Alloys Compd 844:156135. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jallcom.2020.156135\nImran Din M, Rani A (2016) Recent advances in the synthesis and stabilization of nickel and nickel oxide nanoparticles: a green adeptness. Int J Anal Chem. https:\u002F\u002Fdoi.org\u002F10.1155\u002F2016\u002F3512145\nMa B, Xing P, Yang W et al (2017) Solid-state metalized reduction of magnesium-rich low-nickel oxide ores using coal as the reductant based on thermodynamic analysis. Metall Mater Trans B 48:2037–2046. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-017-0977\nKharchenko YV, Blikharskyy ZY, Vira VV, Vasyliv BD (2019) Study of structural changes in a nickel oxide containing anode material during reduction and oxidation at 600°C. In: Fesenko O, Yatsenko L (eds) Nanocomposites, nanostructures, and their applications. NANO 2018. Springer Proceedings in Physics, vol 221. Springer, Cham. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-030-17759-1_42\nBakhshandeha SS, Setoudeh N, Ali Askari Zamanic M et al (2019) Carbothermic reduction of nickel oxide. Adv Process Mater Eng 13:63–75\nQuiroz Cabascango VE, Yu Bazhin V, Cabascango VEQ, Bazhin VY (2020) Nickel oxide reduction in CO\u002FCO2 gas mixtures in reverberatory furnaces. J Phys Conf Ser 1515:22028. https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F1515\u002F2\u002F022028\nChe Abdullah SS, Mohd Nasri NN, Ahmad Zaidi NH et al (2020) Effect of H2\u002FN2 mixtures on reduction of nickel oxide. Materials Science Forum. Trans Tech Publ, Switzerland, pp 280–285\nAhmad F, Lovell EC, Masood H et al (2020) Low-temperature co2 methanation: synergistic effects in plasma-Ni hybrid catalytic system. ACS Sustain Chem Eng 8:1888–1898. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facssuschemeng.9b06180\nKharatyan SL, Chatilyan HA, Manukyan KV (2019) Kinetics and mechanism of nickel oxide reduction by methane. J Phys Chem C 123:21513–21521. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.jpcc.9b04506\nHidayat T, Rhamdhani MA, Jak E, Hayes PC (2009) Investigation of nickel product structures developed during the gaseous reduction of solid nickel oxide. Metall Mater Trans B Process Metall Mater Process Sci 40:462–473. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-009-9247-x\nHidayat T, Rhamdhani MA, Jak E, Hayes PC (2009) The kinetics of reduction of dense synthetic nickel oxide in H 2–N2 and H2–H2O atmospheres. Metall Mater Trans B Process Metall Mater Process Sci 40:1–16. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-008-9212-0\nHidayat T, Rhamdhani MA, Jak E, Hayes PC (2009) On the relationships between the kinetics and mechanisms of gaseous hydrogen reduction of solid nickel oxide. Metall Mater Trans B Process Metall Mater Process Sci 40:474–489. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-009-9239-x\nHidayat T, Rhamdhani MA, Jak E, Hayes PC (2008) The characterization of nickel metal pore structures and the measurement of intrinsic reaction rate during the reduction of nickel oxide in H2–N2 and H2–H2O atmospheres. Miner Eng 21:157–166. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2007.09.004\nBenton AF, Emmett PH (1924) The reduction of nickelous and ferric oxides by hydrogen. J Am Chem Soc 46:2728–2737. https:\u002F\u002Fdoi.org\u002F10.1021\u002Fja01677a018\nRodriguez JA, Hanson JC, Frenkel AI et al (2002) Experimental and theoretical studies on the reaction of H2 with NiO: role of O vacancies and mechanism for oxide reduction. J Am Chem Soc 124:346–354. https:\u002F\u002Fdoi.org\u002F10.1021\u002Fja0121080\nRichardson JJT, Scates RMR, Twigg MVM (2004) X-Ray diffraction study of the hydrogen reduction of NiO\u002Fα-Al2O3 steam reforming catalysts. Appl Catal A Gen 267:35–46. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apcata.2004.02.022\nJeangros Q, Hansen TW, Wagner JB et al (2013) Reduction of nickel oxide particles by hydrogen studied in an environmental TEM. J Mater Sci 48:2893–2907. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10853-012-7001-2\nManukyan KV, Avetisyan AG, Shuck CE et al (2015) Nickel oxide reduction by hydrogen: kinetics and structural transformations. J Phys Chem C 119:16131–16138. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.jpcc.5b04313\nLee DS, Min DJ (2019) A kinetics of hydrogen reduction of nickel oxide at moderate temperature. Met Mater Int 25:982–990. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12540-019-00261-y\nYu D, Zhu M, Utigard TA, Barati M (2013) TGA kinetic study on the hydrogen reduction of an iron nickel oxide. Miner Eng 54:32–38. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mineng.2013.03.018\nChatterjee R, Banerjee SSS, Banerjee SSS, Ghosh D (2012) Reduction of nickel oxide powder and pellet by hydrogen. Trans Indian Inst Met 65:265–273. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12666-012-0130-0\nL’vov BV, Galwey AK, L’vov BV et al (2012) The mechanism and kinetics of NiO reduction by hydrogen Thermochemical approach. J Therm Anal Calorim 110:601–610. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10973-011-2000-0\nRichardson JT, Scates R, Twigg MV (2003) X-ray diffraction study of nickel oxide reduction by hydrogen. Appl Catal A Gen 246:137–150. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0926-860X(02)00669-5\nZhou Z, Han L, Bollas GM (2014) Kinetics of NiO reduction by H2 and Ni oxidation at conditions relevant to chemical-looping combustion and reforming. Int J Hydrogen Energy 39:8535–8556. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ijhydene.2014.03.161\nAvrami M (1940) Kinetics of phase change. II Transformation-time relations for random distribution of nuclei. J Chem Phys 8:212–224. https:\u002F\u002Fdoi.org\u002F10.1063\u002F1.1750631\nAvrami M (1939) Kinetics of phase change. I: general theory. J Chem Phys 7:1103–1112. https:\u002F\u002Fdoi.org\u002F10.1063\u002F1.1750380\nChen F, Mohassab Y, Zhang S, Sohn HY (2015) Kinetics of the reduction of hematite concentrate particles by carbon monoxide relevant to a novel flash ironmaking process. Metall Mater Trans B Process Metall Mater Process Sci 46:1716–1728. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-015-0345-7\nSzekely J, Lin CII, Sohn HYY (1973) A structural model for gas-solid reactions with a moving boundary-V an experimental study of the reduction of porous nickel-oxide pellets with hydrogen. Chem Eng Sci 28:1975–1989. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0009-2509(73)85042-0\nSzekely J, Evans JWW (1971) A structural model for gas-solid reactions with a moving boundary-II. Chem Eng Sci 26:1901–1913. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0009-2509(71)86033-5\nAdnadević B, Janković B (2008) Dispersive kinetic model for the non-isothermal reduction of nickel oxide by hydrogen. Phys B Condens Matter 403:4132–4138. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.physb.2008.08.020\nSabat KC (2021) Production of nickel by cold hydrogen plasma. Plasma Chem Plasma Process 41:1329–1345. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-021-10194-3\nSabat KC, Rajput P, Paramguru RK et al (2014) Reduction of oxide minerals by hydrogen plasma: an overview. Plasma Chem Plasma Process 34:1–23. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-013-9484-2\nRajput P, Sabat KC, Paramguru RK et al (2014) Direct reduction of iron in low temperature hydrogen plasma. Ironmak Steelmak 41:721–731. https:\u002F\u002Fdoi.org\u002F10.1179\u002F1743281214Y.0000000186\nSabat KC, Paramguru RK, Pradhan S, Mishra BK (2015) Reduction of cobalt oxide (Co3O4) by low temperature hydrogen plasma. Plasma Chem Plasma Process 35:387–399. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-014-9602-9\nSabat KC (2019) Hydrogen Plasma - Thermodynamics. In: Journal of Physics: Conference Series. Institute of Physics Publishing, pp 1–20. https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F1172\u002F1\u002F012086\nSabat KC (2019) Iron production by hydrogen plasma. In: International Conference on Applied Physics, Power and Material Science. Institute of Physics Publishing, pp 1–5. https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F1172\u002F1\u002F012043\nSabat KC, Paramguru RK, Mishra BK (2017) Reduction of oxide mixtures of (Fe2O3 + CuO) and (Fe2O3 + Co3O4) by low-temperature hydrogen plasma. Plasma Chem Plasma Process 37:979–995. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-017-9818-6\nSabat KC (2019) Formation of CuCo alloy from their oxide mixtures through reduction by low-temperature hydrogen plasma. Plasma Chem Plasma Process 39:1071–1086. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-019-09963-y\nSabat KC, Paramguru RK, Mishra BK (2018) Formation of copper–nickel alloy from their oxide mixtures through reduction by low-temperature hydrogen plasma. Plasma Chem Plasma Process 38:621–635. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-018-9880-8\nRajput P, Bhoi B, Paramguru RK, Mishra BK (2016) Effect Of plasma state and alloying addition on reduction of Fe2O3 by a low-temperature hydrogen plasma. High Temp Mater Process 20:317–332\nSabat KC, Murphy AB (2017) Hydrogen plasma processing of iron ore. Metall Mater Trans B Process Metall Mater Process Sci 48:1561–1594. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11663-017-0957-1\nSabat KC, Paramguru RK, Mishra BK (2016) Reduction of copper oxide by low-temperature hydrogen plasma. Plasma Chem Plasma Process 36:1111–1124. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11090-016-9710-9\nYu X, Zhang X (2017) High coverage water adsorption on CuO(011) surface. Phys Chem Chem Phys 19:18652–18659. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc7cp03003g\nDereń J, Stoch J (1970) Effect of biography on stoichiometric composition and chemisorptive properties of nickel oxide (oxygen chemisorption). J Catal 18:249–259. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0021-9517(70)90319-2\nHolder CF, Schaak RE (2019) Tutorial on powder X-ray diffraction for characterizing nanoscale materials. ACS Nano 13:7359–7365. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facsnano.9b05157\nCullity SR, Stock BD (2001) Elements of x-ray diffraction. Prentice Hall, New Jersey\nSoo Kim D, Chul Lee H (2012) Nickel vacancy behavior in the electrical conductance of nonstoichiometric nickel oxide film. J Appl Phys 112(3): 034504. https:\u002F\u002Fdoi.org\u002F10.1063\u002F1.4742993\nDereń J, Mrowec S (1973) Semiconducting and transport properties of mono- and polycrystalline nickel oxide. J Mater Sci 8:545–558. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF00550459\nBielański A, Dereń J, Haber J, Słoczyński J (1962) Physico-chemical properties of alkali- and iron-doped nickel oxide. Trans Faraday Soc 58:166–175. https:\u002F\u002Fdoi.org\u002F10.1039\u002FTF9625800166\nDereń J, Nowotny J (1969) Mechanism and kinetics of interaction between gaseous oxygen and nickel oxide surfaces. Oxid Met 1:73–91. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF00609925\nDubey P, Kaurav N, Devan RS et al (2018) The effect of stoichiometry on the structural, thermal and electronic properties of thermally decomposed nickel oxide. RSC Adv 8:5882–5890. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc8ra00157j\nPayne BP, Biesinger MC, McIntyre NS (2012) Use of oxygen\u002Fnickel ratios in the XPS characterisation of oxide phases on nickel metal and nickel alloy surfaces. J Electron Spectros Relat Phenomena 185:159–166. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.elspec.2012.06.008\nPayne BP, Biesinger MC, McIntyre NS (2009) The study of polycrystalline nickel metal oxidation by water vapour. J Electron Spectros Relat Phenomena 175(1–3):55–65. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.elspec.2009.07.006\nBiesinger MC, Payne BP, Lau LWM et al (2009) X-ray photoelectron spectroscopic chemical state quantification of mixed nickel metal, oxide and hydroxide systems. Surf Interface Anal 41:324–332. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fsia.3026\nNorton PR, Tapping RL, Goodale JW (1977) A photoemission study of the interaction of Ni(100), (110) and (111) surfaces with oxygen. Surf Sci 65:13–36. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0039-6028(77)90289-8\nRoberts MW, Smart RSC (1984) The defect structure of nickel oxide surfaces as revealed by photoelectron spectroscopy. J Chem Soc Farady Trans 80:2957–2968. https:\u002F\u002Fdoi.org\u002F10.1039\u002FF19848002957\nCarley AF, Chalker PR, Roberts MW (1985) Defects in oxide overlayers at nickel single-crystal surfaces. In: Proceedings of The Royal Society of London, Series A: Mathematical and Physical Sciences, vol 399, pp 167–179\nDubey P, Kaurav N (2017) Synthesis and thermogravimetric analysis of non-stoichiometric nickel oxide compounds. J Phys Conf Ser. https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F836\u002F1\u002F012040\nBielański A (1979) Oxygen in catalysis on transition metal oxides. Catal Rev 19:1–41. https:\u002F\u002Fdoi.org\u002F10.1080\u002F03602457908065099\nYin X, Guo Y, Xie H et al (2019) Nickel oxide as efficient hole transport materials for perovskite solar cells. Sol RRL 3:1–27. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fsolr.201900001\nWang Q, Puntambekar A, Chakrapani V (2016) Vacancy-induced semiconductor-insulator-metal transitions in nonstoichiometric nickel and tungsten oxides. Nano Lett 16:7067–7077. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.nanolett.6b03311\nDubey P, Kaurav N (2019) Stoichiometric and nonstoichiometric compounds. intechOpen, London\nKarsthof R, Anton AM, Kremer F, Grundmann M (2020) Nickel vacancy acceptor in nickel oxide: doping beyond thermodynamic equilibrium. Phys Rev Mater 4:1–9. https:\u002F\u002Fdoi.org\u002F10.1103\u002FPhysRevMaterials.4.034601\nHala M, Capek J, Zabeida O et al (2012) Hysteresis-free deposition of niobium oxide films by HiPIMS using different pulse management strategies. J Phys D Appl Phys 45:1–28. https:\u002F\u002Fdoi.org\u002F10.1088\u002F0022-3727\u002F45\u002F5\u002F055204\nNational Institute of Standards and Technology (2012) NIST-JANAF Thermochemical Tables. https:\u002F\u002Fjanaf.nist.gov\u002F. Accessed 13 Mar 2021\nGamsjäger H, Bugajski J, Preis W et al (2005) Chemical thermodynamics of nickel. Elsevier Amsterdam, Netherlands\nDieke GH (1958) The molecular spectrum of hydrogen and its isotopes. J Mol Spectrosc 2:494–517. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0022-2852(58)90095-X\nIII RDJ NIST Computational Chemistry Comparison and Benchmark Database, NIST Standard Reference Database Number 101 Release 21, August 2020,. https:\u002F\u002Fcccbdb.nist.gov\u002Fexp2x.asp?casno=1333740&charge=0\nSabat KC (2022) Hematite reduction by hydrogen plasma: Where are we now? Int J Miner Metall Mater. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12613-022-2467-7\nDey S, Mehta NS (2020) Oxidation of carbon monoxide over various nickel oxide catalysts in different conditions: a review. Chem Eng J Adv 1:100008. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ceja.2020.100008\nRichardson JT, Scates R, Twigg MV (2003) X-ray diffraction study of nickel oxide reduction by hydrogen. Appl Catal A-General 246:137–150\nSzekely J, Evans JW, Sohn HY (1976) Gas-solid reactions. Academic Press, London\nSohn HY, Wadsworth ME (1979) Rate processes of extractive metallurgy, 1st edn. Plenum Press, New York\nSohn H (2005) Fundamentals of Metallurgy. In: Seetharaman S (ed) Woodhead Publishing Limited, Cambridge. Woodhead Publishing Limited, Cambridge, pp 299–310\nSeetharaman S (2014) Treatise on Process Metallurgy. Treatise on Process Metallurgy, 1st edn. Elsevier, Netherland, pp 1–1810\nSohn HY (2020) Fluid-Solid Reactions. Elsevier\nFurstenau RP, McDougall G, Langell MA (1985) Initial stages of hydrogen reduction of NiO(100). Surf Sci 150:55–79. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0039-6028(85)90211-0\nShams El Din AM, El Dahshan ME, Taj El Din AM (2000) Dissolution of copper and copper-nickel alloys in aerated dilute HCl solutions. Desalination 130:89–97. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0011-9164(00)00077-1\nSeetharaman S (2005) Fundamentals of metallurgy. Elsevier",{"VOID":1097},"10.1007\u002Fs11090-022-10248-0","2024-06-25T15:29:19.057+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11090-022-10248-0",[1101],{"id":1102,"sortIndex":23,"researcher":22,"roles":1103,"affiliations":1104,"properties":1113,"displayName":1115,"givenName":22,"familyName":22},"6e7b8e32-373f-4a19-a34c-a803e1d806d2",[253],[1105],{"id":1106,"sortIndex":23,"affiliation":1107,"properties":22},"c0f62994-3a54-4b04-a112-11dbfb219a01",{"id":1106,"createTime":22,"updateTime":22,"relativeEntities":1108,"slug":22,"properties":1109,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1112,"statistic":22},[],{"title":1110},{"VI":1111},"Department of Materials and Metallurgical Engineering, Maulana Azad National Institute of Technology, Bhopal, India",[],{"title":1114},{"VI":1115},"Kali Charan Sabat",{"url":1099,"publisher":1117,"properties":1170},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1118,"slug":10,"properties":1119,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1123,"manageAffiliations":1139,"indexDatabases":1150,"url":22,"thumbnailPath":22,"statistic":1165,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1120,"title":1121,"eissn":1122},{"VOID":15},{"EN":17},{"VOID":13},[1124,1128,1132,1136],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1125,"label":1126,"description":1127,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1129,"label":1130,"description":1131,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1133,"label":1134,"description":1135,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1137,"label":1138,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1140,1145],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1141,"slug":22,"properties":1142,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1144,"statistic":22},[],{"title":1143},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1146,"slug":22,"properties":1147,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1149,"statistic":22},[],{"title":1148},{"EN":61},[63],[1151,1158],{"id":66,"indexDatabase":1152,"url":77,"indexYears":78,"academicFieldIds":1157,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1153,"label":1154,"description":1155,"key":74,"publicationTags":1156,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1159,"url":99,"indexYears":22,"academicFieldIds":1164,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1160,"label":1161,"description":1162,"key":95,"publicationTags":1163,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1166,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1167,"totalCitation":149,"totalCitationByYear":1168,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1169,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1171,"volume":1173},{"VOID":1172},"833-853",{"VOID":1174},"42","2022-04-13",2022,"ERROR_IN_GET_PLATFORM_ID","2026-07-22T19:49:47.460+00:00",[97,84],{"id":1181,"createTime":1182,"updateTime":1183,"relativeEntities":1184,"slug":1185,"properties":1186,"entityType":242,"verifyStatus":243,"verifyTime":1197,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1198,"fullTextUrl":22,"authors":1199,"publicationType":306,"publisherRelationship":1271,"citationCount":23,"citationInfo":1329,"publishDate":1332,"publishYear":1330,"citationAnalyzeStatus":503,"lastCitationAnalyze":1333,"indexDatabases":1334,"openAccess":22,"references":22,"isForceReanalyzing":369},"0649e425-194f-4fac-8122-cd489830ac50","2024-02-17T04:02:55.523+00:00","2026-07-20T12:38:23.794+00:00",[],"Plasma-Nitrogen-Oxides-Synthesis-in-a-Milli-Scale-Gliding-Arc-Reactor-Investigating-the-Electrical-and-Process-Parameters",{"abstract":1187,"title":1189,"gsPaper":1191,"references":1193,"doi":1195},{"EN":1188},"Nitrogen fixed in the form of nitrogen oxides is essential to produce fertilizers and many other chemical products, which is vital to sustain life. The performance of a milli-scale gliding arc reactor operated under atmospheric pressure has been studied for nitrogen oxides synthesis. In this work, the electrical and process parameters of the gliding arc reactor, such as frequency, pulse width, amplitude and feed ratio were investigated respectively. The experiments were performed at 1 L\u002Fmin in a gliding arc discharge regime. The highest concentration of NOx was found to be ~1 % at energy consumption of 10 kWh\u002Fkg of NOx. Increase in frequency, pulse width and amplitude resulted in an increased specific energy input and NOx concentration. The feed ratio (N2\u002FO2) affected the amount of NO and NO2 produced, which gives possibility to independently obtain the desired ratio of NO\u002FNO2 by tuning the electrical and process parameters.",{"EN":1190},"Plasma Nitrogen Oxides Synthesis in a Milli-Scale Gliding Arc Reactor: Investigating the Electrical and Process Parameters",{"VOID":1192},"[\"761766061658428616\"]",{"VOID":1194},"UNEP and WHRC, UNEP W (2007) Reactive nitrogen in the environment: too much or too little of a good thing. United Nations Environment Programme, Paris\nGalloway JN, Cowling EB (2002) Reactive nitrogen and the world: 200 years of change. Ambio 31:64–71. doi:10.2307\u002F4315217\nCherkasov N, Ibhadon AO, Fitzpatrick P (2015) A review of the existing and alternative methods for greener nitrogen fixation. Chem Eng Process Process Intensif 90:24–33. doi:10.1016\u002Fj.cep.2015.02.004\nGalloway JN, Townsend AR, Erisman JW et al (2008) Transformation of the nitrogen cycle: recent trends, questions, and potential solutions. Science 320:889–892. doi:10.1126\u002Fscience.1136674\nPatil BS, Wang Q, Hessel V, Lang J (2015) Plasma N2-fixation: 1900–2014. Catal Today. doi:10.1016\u002Fj.cattod.2015.05.005\nAppl M (2012) Ammonia, 2. Production processes. Ullmann’s Encycl Ind Chem. doi:10.1002\u002F14356007.o02\nTanabe Y, Nishibayashi Y (2013) Developing more sustainable processes for ammonia synthesis. Coord Chem Rev 257:2551–2564. doi:10.1016\u002Fj.ccr.2013.02.010\nSchrock RR (2006) Reduction of dinitrogen. Proc Natl Acad Sci USA 103:17087. doi:10.1073\u002Fpnas.0603633103\nAppl M (1997) The Haber-Bosch heritage: the ammonia production technology. In: Proceedings of the 50th anniversary IFA technical conference 1–25\nCowling E, Galloway J, Furiness C et al (2001) Optimizing nitrogen management in food and energy production and environmental protection: summary statement from the Second International Nitrogen Conference. Sci World J 1:1–9. doi:10.1100\u002Ftsw.2001.481\nErisman JW, Sutton MA et al (2008) How a century of ammonia synthesis changed the world. Nat Geosci 1:636–639\nInternational Energy Agency-IEA (2013) Technology roadmap: energy and GHG reductions in the chemical industry via catalytic processes. https:\u002F\u002Fwww.iea.org\u002Fpublications\u002Ffreepublications\u002Fpublication\u002FChemical_Roadmap_2013_Final_WEB.pdf\nSamukawa S, Hori M, Rauf S et al (2012) The 2012 plasma roadmap. J Phys D Appl Phys 45:253001. doi:10.1088\u002F0022-3727\u002F45\u002F25\u002F253001\nCreative Energy (2008) European roadmap for process intensification. http:\u002F\u002Fwww.efce.info\u002Fefce_media\u002F-p-531-EGOTEC-qd7dqrlibhceca2k9manq5smu0.pdf?rewrite_engine=id\nHessel V, Cravotto G, Fitzpatrick P et al (2013) Industrial applications of plasma, microwave and ultrasound techniques: nitrogen-fixation and hydrogenation reactions. Chem Eng Process Process Intensif 71:19–30. doi:10.1016\u002Fj.cep.2013.02.002\nHessel V, Anastasopoulou A, Wang Q et al (2013) Energy, catalyst and reactor considerations for (near)-industrial plasma processing and learning for nitrogen-fixation reactions. Catal Today 211:9–28. doi:10.1016\u002Fj.cattod.2013.04.005\nAnastasopoulou A, Wang Q, Hessel V, Lang J (2014) Energy considerations for plasma-assisted N-fixation reactions. Processes 2:694–710. doi:10.3390\u002Fpr2040694\nLi L, Qu L, Cheng J et al (2009) Oxidation of nitric oxide to nitrogen dioxide over Ru catalysts. Appl Catal B Environ 88:224–231. doi:10.1016\u002Fj.apcatb.2008.09.032\nMalik MA, Jiang C, Heller R et al (2016) Ozone-free nitric oxide production using an atmospheric pressure surface discharge: a way to minimize nitrogen dioxide co-production. Chem Eng J 283:631–638. doi:10.1016\u002Fj.cej.2015.07.092\nSpasova B, Tiemann D, O’Connell M et al (2014) Synthesis gas production from methane and propane in a miniaturized GlidArc® reformer. Int J Hydrogen Energy 39:12657–12666. doi:10.1016\u002Fj.ijhydene.2014.06.065\nTu X, Whitehead JC (2014) Plasma dry reforming of methane in an atmospheric pressure AC gliding arc discharge: co-generation of syngas and carbon nanomaterials. Int J Hydrogen Energy 39:9658–9669. doi:10.1016\u002Fj.ijhydene.2014.04.073\nIndarto A, Yang DR, Choi JW et al (2007) Gliding arc plasma processing of CO2 conversion. J Hazard Mater 146:309–315. doi:10.1016\u002Fj.jhazmat.2006.12.023\nPornmai K, Jindanin A, Sekiguchi H, Chavadej S (2012) Synthesis gas production from CO2-containing natural gas by combined steam reforming and partial oxidation in an AC gliding arc discharge. Plasma Chem Plasma Process 32:723–742. doi:10.1007\u002Fs11090-012-9371-2\nKrawczyk K, Ulejczyk B (2003) Decomposition of chloromethanes in gliding discharges. Plasma Chem Plasma Process 23:265–281. doi:10.1023\u002FA:1022916018245\nDalaine V, Cormier JM, Lefaucheux P (1998) A gliding discharge applied to H2S destruction. J Appl Phys 83:2435–2441. doi:10.1002\u002Fchem.201304722\nKrawczyk K, Mlotek M (2001) Combined plasma-catalytic processing of nitrous oxide. Appl Catal B Environ 30:233–245. doi:10.1016\u002FS0926-3373(00)00243-5\nFridman A, Nester S, Kennedy LA et al (1999) Gliding arc gas discharge. Prog Energ Combust 25:211–231\nCzemichowski A (1994) Gliding arc: applications to engineering and environment control. Pure Appl Chem 66:1301–1310\nKolev S, Bogaerts A (2015) A 2D model for a gliding arc discharge. Plasma Sour Sci Technol 24:015025. doi:10.1088\u002F0963-0252\u002F24\u002F1\u002F015025\nBurlica R, Kirkpatrick MJ, Locke BR (2006) Formation of reactive species in gliding arc discharges with liquid water. J Electrostat 64:35–43. doi:10.1016\u002Fj.elstat.2004.12.007\nCormier JM, Aubry O, Khacef A (2008) Degradation of organics compounds and production of activated species in dielectric barrier discharges and glidarc reactors. NATO Secur Through Sci Ser A Chem Biol. doi:10.1007\u002F978-1-4020-8439-3_10\nCzekalska Z (2010) Gases conversion in low temperature plasma. Arch combust 30(4):337–346\nBo Z, Yan J, Li X et al (2009) Nitrogen dioxide formation in the gliding arc discharge-assisted decomposition of volatile organic compounds. J Hazard Mater 166:1210–1216. doi:10.1016\u002Fj.jhazmat.2008.12.030\nSpasova B, Kolb G, Hessel V (2013) Miniaturized GlidArc® reformer for conversion of methane and propane to synthesis gas. In: Proceedings of th 21st international symposium plasma chemistry (ISPC 21) Sunday 4 August–Friday 9 August 2013 Cairns Convention Centre, Queensland, pp 4–7\nRueangjitt N, Sreethawong T, Chavadej S, Sekiguchi H (2009) Plasma-catalytic reforming of methane in AC microsized gliding arc discharge: effects of input power, reactor thickness, and catalyst existence. Chem Eng J 155:874–880. doi:10.1016\u002Fj.cej.2009.10.009\nSreethawong T, Thakonpatthanakun P, Chavadej S (2007) Partial oxidation of methane with air for synthesis gas production in a multistage gliding arc discharge system. Int J Hydrogen Energy 32:1067–1079. doi:10.1016\u002Fj.ijhydene.2006.07.013\nIndarto A, Choi JW, Lee H, Song HK (2006) Effect of additive gases on methane conversion using gliding arc discharge. Energy 31:2650–2659. doi:10.1016\u002Fj.energy.2005.10.034\nAmouroux J, Cavadias S et al (1979) Réacteur de synthèse et de trempe dans un plasma hors d’équilibre : application à la synthèse des oxydes d’azote. Rev Phys Appl 14:969–976\nPolak LS, Shchipachev VS (1965) In: Polak LS (ed) Kinetics and thermodynamics of chemical reactions in low temperature plasma. Nauka (Science), Moscow, pp 151–166\nFridman A (2008) Plasma chemistry. Cambridge University Press, New York\nMutel B, Dessaux O, Goudmand P (1984) Energy cost improvement of the nitrogen oxides synthesis in a low pressure plasma. Rev Phys Appl 19:461–464",{"VOID":1196},"10.1007\u002Fs11090-015-9671-4","2024-05-28T12:29:30.168+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11090-015-9671-4",[1200,1215,1228,1243,1258],{"id":1201,"sortIndex":23,"researcher":22,"roles":1202,"affiliations":1203,"properties":1212,"displayName":1214,"givenName":22,"familyName":22},"c09f3f17-a357-4cab-9c95-d0eb833709f1",[253],[1204],{"id":1205,"sortIndex":23,"affiliation":1206,"properties":22},"f83bf787-8b14-4f28-843c-ff1fcc39682a",{"id":1205,"createTime":22,"updateTime":22,"relativeEntities":1207,"slug":22,"properties":1208,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1211,"statistic":22},[],{"title":1209},{"VI":1210},"Laboratory of Chemical Reactor Engineering\u002FMicro Flow Chemistry and Process Technology, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, Eindhoven, The Netherlands",[],{"title":1213},{"VI":1214},"B. S. Patil",{"id":1216,"sortIndex":207,"researcher":22,"roles":1217,"affiliations":1218,"properties":1225,"displayName":1227,"givenName":22,"familyName":22},"f1ea2468-98ac-49b9-bed7-2de22ca541d6",[253],[1219],{"id":1205,"sortIndex":23,"affiliation":1220,"properties":22},{"id":1205,"createTime":22,"updateTime":22,"relativeEntities":1221,"slug":22,"properties":1222,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1224,"statistic":22},[],{"title":1223},{"VI":1210},[],{"title":1226},{"VI":1227},"J. Rovira Palau",{"id":1229,"sortIndex":180,"researcher":22,"roles":1230,"affiliations":1231,"properties":1238,"displayName":1240,"givenName":22,"familyName":22},"375fd082-2844-4275-98cc-565f50b4949b",[253],[1232],{"id":1205,"sortIndex":23,"affiliation":1233,"properties":22},{"id":1205,"createTime":22,"updateTime":22,"relativeEntities":1234,"slug":22,"properties":1235,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1237,"statistic":22},[],{"title":1236},{"VI":1210},[],{"title":1239,"gsAuthor":1241},{"VI":1240},"V. Hessel",{"VOID":1242},"[\"gV2yJJMAAAAJ\"]",{"id":1244,"sortIndex":294,"researcher":22,"roles":1245,"affiliations":1246,"properties":1255,"displayName":1257,"givenName":22,"familyName":22},"2f7e1ffc-5a92-4f2c-af4a-76269cdd3a08",[253],[1247],{"id":1248,"sortIndex":23,"affiliation":1249,"properties":22},"45054bca-51b5-43b2-99f2-ed73f3503166",{"id":1248,"createTime":22,"updateTime":22,"relativeEntities":1250,"slug":22,"properties":1251,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1254,"statistic":22},[],{"title":1252},{"VI":1253},"Innovation Management, Verfahrenstechnik and Engineering, Evonik Industries AG, Hanau-Wolfgang, Germany",[],{"title":1256},{"VI":1257},"Jürgen Lang",{"id":1259,"sortIndex":501,"researcher":22,"roles":1260,"affiliations":1261,"properties":1268,"displayName":1270,"givenName":22,"familyName":22},"29ae5015-d6da-4314-a8e8-2ea8add373ba",[253],[1262],{"id":1205,"sortIndex":23,"affiliation":1263,"properties":22},{"id":1205,"createTime":22,"updateTime":22,"relativeEntities":1264,"slug":22,"properties":1265,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1267,"statistic":22},[],{"title":1266},{"VI":1210},[],{"title":1269},{"VI":1270},"Q. Wang",{"url":1198,"publisher":1272,"properties":1325},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1273,"slug":10,"properties":1274,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1278,"manageAffiliations":1294,"indexDatabases":1305,"url":22,"thumbnailPath":22,"statistic":1320,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1275,"title":1276,"eissn":1277},{"VOID":15},{"EN":17},{"VOID":13},[1279,1283,1287,1291],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1280,"label":1281,"description":1282,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1284,"label":1285,"description":1286,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1288,"label":1289,"description":1290,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1292,"label":1293,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1295,1300],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1296,"slug":22,"properties":1297,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1299,"statistic":22},[],{"title":1298},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1301,"slug":22,"properties":1302,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1304,"statistic":22},[],{"title":1303},{"EN":61},[63],[1306,1313],{"id":66,"indexDatabase":1307,"url":77,"indexYears":78,"academicFieldIds":1312,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1308,"label":1309,"description":1310,"key":74,"publicationTags":1311,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1314,"url":99,"indexYears":22,"academicFieldIds":1319,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1315,"label":1316,"description":1317,"key":95,"publicationTags":1318,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1321,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1322,"totalCitation":149,"totalCitationByYear":1323,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1324,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1326,"volume":1328},{"VOID":1327},"241-257",{"VOID":496},{"total":23,"publishYear":1330,"statisticByYear":1331},2015,{},"2015-10-23","2026-07-20T12:38:23.793+00:00",[97,84],{"id":1336,"createTime":1337,"updateTime":1338,"relativeEntities":1339,"slug":1340,"properties":1341,"entityType":242,"verifyStatus":243,"verifyTime":1352,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":207,"primaryUrl":1353,"fullTextUrl":1354,"authors":1355,"publicationType":306,"publisherRelationship":1431,"citationCount":125,"citationInfo":1492,"publishDate":1496,"publishYear":1493,"citationAnalyzeStatus":1078,"lastCitationAnalyze":1497,"indexDatabases":1498,"openAccess":22,"references":22,"isForceReanalyzing":369},"dd4e5324-bf94-45ed-80a7-b25653f7d79d","2023-12-10T00:39:50.882+00:00","2026-07-18T04:58:04.661+00:00",[],"The-Role-of-High-Voltage-Electrode-Material-in-the-Inactivation-of-E-coli-by-Direct-in-Liquid-Electrical-Discharge-Plasma",{"abstract":1342,"title":1344,"gsPaper":1346,"references":1348,"doi":1350},{"EN":1343},"This work investigates the effect of high voltage (HV) electrode material of a point-plane plasma reactor on the inactivation rate of E. coli in both direct plasma and post-discharge inactivation processes. For the direct plasma processes, nickel chromium alloy, iron, tungsten and copper were used as HV electrode materials. In comparison with the other three materials, a significantly higher inactivation rate of E. coli was achieved with copper as the HV electrode. The inactivation effect was demonstrated to be mainly associated with the toxicity of copper ions, rather than from copper nanoparticles released from the electrode during the treatment. Similarly, for the post-discharge inactivation process, a higher E. coli inactivation rate was achieved in both post-plasma and plasma-treated water treatment using copper as the HV electrode, as compared to the tungsten control case. Increased inactivation rates are a result of a synergistic action between copper ions and the hydrogen peroxide generated by the plasma.",{"EN":1345},"The Role of High Voltage Electrode Material in the Inactivation of E. coli by Direct-in-Liquid Electrical Discharge Plasma",{"VOID":1347},"[\"8122276704374594784\"]",{"VOID":1349},"citation_journal_title=Radiat Phys Chem; citation_title=Plasma inactivation of food-related microorganisms in liquids; citation_author=L Marsili, S Espie, JG Anderson, SJ MacGregor; citation_volume=65; citation_issue=4–5; citation_publication_date=2002; citation_pages=507-513; citation_doi=10.1016\u002FS0969-806X(02)00367-5; citation_id=CR1\ncitation_journal_title=IEEE Trans Plasma Sci; citation_title=The potential of pulsed underwater streamer discharges as a disinfection technique; citation_author=SB Gupta, H Bluhm; citation_volume=36; citation_issue=4; citation_publication_date=2008; citation_pages=1621-1632; citation_doi=10.1109\u002FTPS.2008.2001231; citation_id=CR2\ncitation_title=Sterilization and disinfection by plasma: sterilization mechanisms, biological, and medical applications; citation_publication_date=2011; citation_id=CR3; citation_author=A Sakud; citation_author=H Shintani; citation_publisher=NOVA Science Publishers\ncitation_journal_title=Plasma Sources Sci Technol; citation_title=Generation of chemically active species by electrical discharges in water; citation_author=P Sunka, V Babický, M Clupek, P Lukes, M Simek, J Schmidt, M Cernak; citation_volume=8; citation_issue=2; citation_publication_date=1999; citation_pages=258-265; citation_doi=10.1088\u002F0963-0252\u002F8\u002F2\u002F006; citation_id=CR4\nHeld P (2012) An introduction to reactive oxygen species: measurement of ROS in cells (white paper), Vermont. \n                    https:\u002F\u002Fwww.biotek.com\u002Fresources\u002Fwhite-papers\u002Fan-introduction-to-reactive-oxygen-species-measurement-of-ros-in-cells\u002F\n                    \n                  . 26 Oct 2018\ncitation_journal_title=N J Phys; citation_title=Physical and biological mechanisms of direct plasma interaction with living tissue; citation_author=D Dobrynin, G Fridman, G Friedman, A Fridman; citation_volume=11; citation_issue=11; citation_publication_date=2009; citation_pages=115020-115045; citation_doi=10.1088\u002F1367-2630\u002F11\u002F11\u002F115020; citation_id=CR6\ncitation_journal_title=Photochem Photobiol; citation_title=Action spectra in ultraviolet wavelengths (150–250 nm) for inactivation and mutagenesis of Bacillus subtilis spores obtained with synchrotron radiation; citation_author=N Munakata, K Hidea, K Kobayashi, A Ito, T Ito; citation_volume=44; citation_issue=3; citation_publication_date=1986; citation_pages=385-390; citation_doi=10.1111\u002Fj.1751-1097.1986.tb04680.x; citation_id=CR7\ncitation_journal_title=Photochem Photobiol; citation_title=Inactivation action spectra of Bacillus subtilis spores in extended ultraviolet wavelengths (50–300 nm) obtained with synchrotron radiation; citation_author=N Munakata, M Saito, K Hieda; citation_volume=54; citation_issue=5; citation_publication_date=1991; citation_pages=761-768; citation_doi=10.1111\u002Fj.1751-1097.1991.tb02087.x; citation_id=CR8\ncitation_journal_title=J Photochem Photobiol B; citation_title=Action spectra for survival and spore photoproduct formation of Bacillus subtilis irradiated with short-wavelength (200–300 nm) UV at atmospheric pressure and in vacuo; citation_author=C Lindberg, G Horneck; citation_volume=11; citation_issue=1; citation_publication_date=1991; citation_pages=69-80; citation_doi=10.1016\u002F1011-1344(91)80269-N; citation_id=CR9\ncitation_journal_title=Appl Environ Microbiol; citation_title=Gliding arc discharge in the potato pathogen Erwinia carotovora subsp. atroseptica: mechanism of lethal action and effect on membrane-associated molecules; citation_author=M Moreau, M Feuilloley, W Veron, T Meylheuc, S Chevalier, J-L Brisset, N Orange; citation_volume=73; citation_issue=18; citation_publication_date=2007; citation_pages=5904-5910; citation_doi=10.1128\u002FAEM.00662-07; citation_id=CR10\ncitation_journal_title=IEEE Trans Plasma Sci; citation_title=Bacterial decontamination of water by means of pulsed-corona discharges; citation_author=A Abou-Ghazala, S Katsuki, KH Schoenbach, FC Dobbs, KR Moreira; citation_volume=30; citation_issue=4; citation_publication_date=2002; citation_pages=1449-1453; citation_doi=10.1109\u002FTPS.2002.804193; citation_id=CR11\ncitation_journal_title=Sci Rep; citation_title=A submerged dielectric barrier discharge plasma inactivation mechanism of biofilms produced by Escherichia coli O157: H7, Cronobacter sakazakii, and Staphylococcus aureus; citation_author=MSI Khan, E-J Lee, Y-J Kim; citation_volume=6; citation_publication_date=2016; citation_pages=37072-37082; citation_doi=10.1038\u002Fsrep37072; citation_id=CR12\ncitation_journal_title=Plasma Sources Sci Technol; citation_title=Ultraviolet radiation from the pulsed corona discharge in water; citation_author=P Lukes, M Clupek, V Babicky, P Sunka; citation_volume=17; citation_issue=2; citation_publication_date=2008; citation_pages=024012-024022; citation_doi=10.1088\u002F0963-0252\u002F17\u002F2\u002F024012; citation_id=CR13\ncitation_journal_title=Czech J Phys; citation_title=Erosion of needle electrodes in pulsed corona discharge in water; citation_author=P Lukeš, M Člupek, V Babický, P Šunka, J Skalný, M Štefečka, J Novák, Z Málková; citation_volume=56; citation_issue=2; citation_publication_date=2006; citation_pages=B916-B924; citation_doi=10.1007\u002Fs10582-006-0304-2; citation_id=CR14\ncitation_journal_title=Plasma Chem Plasma Process; citation_title=Influence of high voltage needle electrode material on hydrogen peroxide formation and electrode erosion in a hybrid gas–liquid series electrical discharge reactor; citation_author=F Holzer, BR Locke; citation_volume=28; citation_issue=1; citation_publication_date=2008; citation_pages=1-13; citation_doi=10.1007\u002Fs11090-007-9107-x; citation_id=CR15\ncitation_journal_title=Ind Eng Chem Res; citation_title=Effects of platinum electrode on hydrogen, oxygen, and hydrogen peroxide formation in aqueous phase pulsed corona electrical discharge; citation_author=MJ Kirkpatrick, BR Locke; citation_volume=45; citation_issue=6; citation_publication_date=2006; citation_pages=2138-2142; citation_doi=10.1021\u002Fie0511480; citation_id=CR16\ncitation_journal_title=Innov Food Sci Emerg Technol; citation_title=Liquid-phase electrical discharge plasmas with a silver electrode for inactivation of a pure culture of Escherichia coli in water; citation_author=T Vukusic, M Shi, Z Herceg, S Rogers, P Estifaee, SM Thagard; citation_volume=38; citation_publication_date=2016; citation_pages=407-413; citation_doi=10.1016\u002Fj.ifset.2016.07.007; citation_id=CR17\ncitation_journal_title=Antimicrob Agents Chemother; citation_title=Antifungal properties of electrically generated metallic ions; citation_author=T Berger, J Spadaro, R Bierman, S Chapin, R Becker; citation_volume=10; citation_issue=5; citation_publication_date=1976; citation_pages=856-860; citation_doi=10.1128\u002FAAC.10.5.856; citation_id=CR18\ncitation_journal_title=J Colloid Interface Sci; citation_title=Silver nanoparticles as antimicrobial agent: a case study on E. coli as a model for Gram-negative bacteria; citation_author=I Sondi, B Salopek-Sondi; citation_volume=275; citation_issue=1; citation_publication_date=2004; citation_pages=177-182; citation_doi=10.1016\u002Fj.jcis.2004.02.012; citation_id=CR19\ncitation_journal_title=Biotechnol Adv; citation_title=Silver nanoparticles as a new generation of antimicrobials; citation_author=M Rai, A Yadav, A Gade; citation_volume=27; citation_issue=1; citation_publication_date=2009; citation_pages=76-83; citation_doi=10.1016\u002Fj.biotechadv.2008.09.002; citation_id=CR20\ncitation_journal_title=Nanomed Nanotechnol Biol Med; citation_title=Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity; citation_author=N Durán, M Durán, MB Jesus, AB Seabra, WJ Fávaro, G Nakazato; citation_volume=12; citation_issue=3; citation_publication_date=2016; citation_pages=789-799; citation_doi=10.1016\u002Fj.nano.2015.11.016; citation_id=CR21\ncitation_journal_title=Toxicol; citation_title=Cell membrane damage and protein interaction induced by copper containing nanoparticles—importance of the metal release process; citation_author=HL Karlsson, P Cronholm, Y Hedberg, M Tornberg, L Battice, S Svedhem, IO Wallinder; citation_volume=313; citation_issue=1; citation_publication_date=2013; citation_pages=59-69; citation_doi=10.1016\u002Fj.tox.2013.07.012; citation_id=CR22\ncitation_journal_title=J Hosp Infect; citation_title=Evaluation of new in vitro efficacy test for antimicrobial surface activity reflecting UK hospital conditions; citation_author=M Ojeil, C Jermann, J Holah, SP Denyer, J-Y Maillard; citation_volume=85; citation_issue=4; citation_publication_date=2013; citation_pages=274-281; citation_doi=10.1016\u002Fj.jhin.2013.08.007; citation_id=CR23\ncitation_journal_title=AMB Express; citation_title=Antimicrobial activity of novel nanostructured Cu-SiO2 coatings prepared by chemical vapour deposition against hospital related pathogens; citation_author=S Varghese, SO ElFakhri, DW Sheel, P Sheel, FJE Bolton, HA Foster; citation_volume=3; citation_issue=1; citation_publication_date=2013; citation_pages=53-60; citation_doi=10.1186\u002F2191-0855-3-53; citation_id=CR24\ncitation_title=Role of free radicals and metal ions in the pathogenesis of Alzheimer’s disease; citation_inbook_title=Metal ions in biological systems; citation_publication_date=1999; citation_id=CR25; citation_author=CS Atwood; citation_author=X Huang; citation_author=RD Moir; citation_author=RE Tanzi; citation_author=AI Bush; citation_publisher=Routledge\ncitation_journal_title=Science; citation_title=Toxic DNA damage by hydrogen peroxide through the Fenton reaction in vivo and in vitro; citation_author=JA Imlay, SM Chin, S Linn; citation_volume=240; citation_issue=4852; citation_publication_date=1988; citation_pages=640-642; citation_doi=10.1126\u002Fscience.2834821; citation_id=CR26\ncitation_journal_title=J Bacteriol; citation_title=Intracellular copper does not catalyze the formation of oxidative DNA damage in Escherichia coli; citation_author=L Macomber, C Rensing, JA Imlay; citation_volume=189; citation_issue=5; citation_publication_date=2007; citation_pages=1616-1626; citation_doi=10.1128\u002FJB.01357-06; citation_id=CR27\ncitation_journal_title=Ind Eng Chem Res; citation_title=Influence of peroxynitrite in gliding arc discharge treatment of alizarin red s and postdischarge effects; citation_author=D Merouani, F Abdelmalek, M Ghezzar, A Semmoud, A Addou, J Brisset; citation_volume=52; citation_issue=4; citation_publication_date=2013; citation_pages=1471-1480; citation_doi=10.1021\u002Fie302964a; citation_id=CR28\ncitation_title=Biological effects of electrical discharge plasma in water and in gas–liquid environments; citation_inbook_title=Plasma chemistry and catalysis in gases and liquids; citation_publication_date=2012; citation_id=CR29; citation_author=P Lukes; citation_author=JL Brisset; citation_author=BR Locke; citation_publisher=Wiley\ncitation_journal_title=J Phys D Appl Phys; citation_title=Long-term antibacterial efficacy of air plasma-activated water; citation_author=MJ Traylor, MJ Pavlovich, S Karim, P Hait, Y Sakiyama, DS Clark, DB Graves; citation_volume=44; citation_issue=47; citation_publication_date=2011; citation_pages=472001-472004; citation_doi=10.1088\u002F0022-3727\u002F44\u002F47\u002F472001; citation_id=CR30\ncitation_journal_title=Appl Environ Microbiol; citation_title=Combined effects of long-living chemical species during microbial inactivation using atmospheric plasma-treated water; citation_author=M Naïtali, G Kamgang-Youbi, J-M Herry, M-N Bellon-Fontaine, J-L Brisset; citation_volume=76; citation_issue=22; citation_publication_date=2010; citation_pages=7662-7664; citation_doi=10.1128\u002FAEM.01615-10; citation_id=CR31\ncitation_journal_title=Appl Environ Microbiol; citation_title=Evidence of temporal postdischarge decontamination of bacteria by gliding electric discharges: application to Hafnia alvei; citation_author=G Kamgang-Youbi, J-M Herry, M-N Bellon-Fontaine, J-L Brisset, A Doubla, M Naïtali; citation_volume=73; citation_issue=15; citation_publication_date=2007; citation_pages=4791-4796; citation_doi=10.1128\u002FAEM.00120-07; citation_id=CR32\ncitation_journal_title=J Food Process Preserv; citation_title=Pulsed electric field inactivation of microorganisms and preservation of quality of cranberry juice; citation_author=ZT Jin, QH Zhang; citation_volume=23; citation_issue=6; citation_publication_date=1999; citation_pages=481-497; citation_doi=10.1111\u002Fj.1745-4549.1999.tb00399.x; citation_id=CR33\ncitation_journal_title=Sci Rep; citation_title=Bactericidal effects against S. aureus and physicochemical properties of plasma activated water stored at different temperatures; citation_author=J Shen, Y Tian, Y Li, R Ma, Q Zhang, J Zhang, J Fang; citation_volume=6; citation_publication_date=2016; citation_pages=28505; citation_doi=10.1038\u002Fsrep28505; citation_id=CR34\ncitation_journal_title=Sci Rep; citation_title=Mechanism of E. coli inactivation by direct-in-liquid electrical discharge plasma in low conductivity solutions; citation_author=P Estifaee, X Su, S Yannam, S Rogers, SM Thagard; citation_volume=9; citation_issue=1; citation_publication_date=2019; citation_pages=2326; citation_doi=10.1038\u002Fs41598-019-38838-7; citation_id=CR35\ncitation_journal_title=Powder Technol; citation_title=Microwave hydrothermal disassembly for evolution from CuO dendrites to nanosheets and their applications in catalysis and photo-catalysis; citation_author=C Yang, J Wang, F Xiao, X Su; citation_volume=264; citation_publication_date=2014; citation_pages=36-42; citation_doi=10.1016\u002Fj.powtec.2014.05.012; citation_id=CR36\ncitation_journal_title=CrystEngComm; citation_title=Crystallization behavior and formation mechanism of dendrite Cu2O crystals; citation_author=J Xue, W Liang, X Liu, Q Shen, B Xu; citation_volume=14; citation_issue=23; citation_publication_date=2012; citation_pages=8017-8022; citation_doi=10.1039\u002Fc2ce26230d; citation_id=CR37\ncitation_journal_title=J Alloys Compd; citation_title=Co-synthesis of CuO-ZnO nanoflowers by low voltage liquid plasma discharge with brass electrode; citation_author=C Li, X Cao, W Li, B Zhang, L Xiao; citation_volume=773; citation_publication_date=2019; citation_pages=762-769; citation_doi=10.1016\u002Fj.jallcom.2018.09.250; citation_id=CR38\ncitation_journal_title=Appl Surf Sci; citation_title=Fabrication of nanostructured CuO films by electrodeposition and their photocatalytic properties; citation_author=Y Wang, T Jiang, D Meng, J Yang, Y Li, Q Ma, J Han; citation_volume=317; citation_publication_date=2014; citation_pages=414-421; citation_doi=10.1016\u002Fj.apsusc.2014.08.144; citation_id=CR39\ncitation_journal_title=Int J Nanomed; citation_title=Green synthesis of copper oxide nanoparticles using gum karaya as a biotemplate and their antibacterial application; citation_author=VVT Padil, M Černík; citation_volume=8; citation_publication_date=2013; citation_pages=889-899; citation_id=CR40\ncitation_journal_title=Trans R Soc Trop Med Hyg; citation_title=Killing of enteric bacteria in drinking water by a copper device for use in the home: laboratory evidence; citation_author=VP Sudha, KO Singh, S Prasad, P Venkatasubramanian; citation_volume=103; citation_issue=8; citation_publication_date=2009; citation_pages=819-822; citation_doi=10.1016\u002Fj.trstmh.2009.01.019; citation_id=CR41\ncitation_journal_title=Curr Med Chem; citation_title=Copper as a biocidal tool; citation_author=G Borkow, J Gabbay; citation_volume=12; citation_issue=18; citation_publication_date=2005; citation_pages=2163-2175; citation_doi=10.2174\u002F0929867054637617; citation_id=CR42\ncitation_title=Plasma chemistry and catalysis in gases and liquids; citation_publication_date=2012; citation_id=CR43; citation_author=VI Pârvulescu; citation_author=M Magureanu; citation_author=P Lukes; citation_publisher=Wiley\ncitation_journal_title=Front Med; citation_title=Immune cells and microbiota response to iron starvation, the quercetin paradigm; citation_author=M Chieppa, G Giannelli; citation_volume=5; citation_publication_date=2018; citation_pages=109-112; citation_doi=10.3389\u002Ffmed.2018.00109; citation_id=CR44\ncitation_journal_title=Nat Rev Microbiol; citation_title=Antimicrobial activity of metals: mechanisms, molecular targets and applications; citation_author=JA Lemire, JJ Harrison, RJ Turner; citation_volume=11; citation_issue=6; citation_publication_date=2013; citation_pages=371-384; citation_doi=10.1038\u002Fnrmicro3028; citation_id=CR45\ncitation_journal_title=J Phys Chem A; citation_title=The Fenton reaction. Dependence of the rate on pH; citation_author=ML Kremer; citation_volume=107; citation_issue=11; citation_publication_date=2003; citation_pages=1734-1741; citation_doi=10.1021\u002Fjp020654p; citation_id=CR46\ncitation_journal_title=J Power Sources; citation_title=Stainless steel as bipolar plate material for polymer electrolyte membrane fuel cells; citation_author=H Wang, MA Sweikart, JA Turner; citation_volume=115; citation_issue=2; citation_publication_date=2003; citation_pages=243-251; citation_doi=10.1016\u002FS0378-7753(03)00023-5; citation_id=CR47\ncitation_journal_title=Environ Microbiol; citation_title=Characterization of nickel-resistant bacteria isolated from serpentine soil; citation_author=A Mengoni, R Barzanti, C Gonnelli, R Gabbrielli, M Bazzicalupo; citation_volume=3; citation_issue=11; citation_publication_date=2001; citation_pages=691-698; citation_doi=10.1046\u002Fj.1462-2920.2001.00243.x; citation_id=CR48\ncitation_journal_title=J Coord Chem; citation_title=Synthesis, characterization and susceptibility of bacteria against Sulfamethoxydiazine complexes of copper (II), zinc (II), nickel (II), cadmium (II), chromium (III) and iron (III); citation_author=L Yang, X Yang, J Liu, Y Li, Q Lou, Q Liu; citation_volume=56; citation_issue=13; citation_publication_date=2003; citation_pages=1131-1139; citation_doi=10.1080\u002F00958970310001596746a; citation_id=CR49\ncitation_journal_title=Plasma Sources Sci Technol; citation_title=The catalytic role of tungsten electrode material in the plasmachemical activity of a pulsed corona discharge in water; citation_author=P Lukes, M Clupek, V Babicky, I Sisrova, V Janda; citation_volume=20; citation_issue=3; citation_publication_date=2011; citation_pages=034011-034021; citation_doi=10.1088\u002F0963-0252\u002F20\u002F3\u002F034011; citation_id=CR50\ncitation_journal_title=PLoS ONE; citation_title=Spatial distribution of an uranium-respiring betaproteobacterium at the Rifle, CO field research site; citation_author=NM Koribanics, SJ Tuorto, N Lopez-Chiaffarelli, LR McGuinness, MM Häggblom, KH Williams, PE Long, LJ Kerkhof; citation_volume=10; citation_issue=4; citation_publication_date=2015; citation_pages=e0123378-e0123391; citation_doi=10.1371\u002Fjournal.pone.0123378; citation_id=CR51\ncitation_journal_title=J Hazard Mater; citation_title=Biosynthesis of copper nanoparticles using Shewanella loihica PV-4 with antibacterial activity: Novel approach and mechanisms investigation; citation_author=Q Lv, B Zhang, X Xing, Y Zhao, R Cai, W Wang, Q Gu; citation_volume=347; citation_publication_date=2018; citation_pages=141-149; citation_doi=10.1016\u002Fj.jhazmat.2017.12.070; citation_id=CR52\ncitation_journal_title=J Dent; citation_title=The role of copper nanoparticles in an etch-and-rinse adhesive on antimicrobial activity, mechanical properties and the durability of resin-dentine interfaces; citation_author=MF Gutiérrez, P Malaquias, V Hass, TP Matos, L Lourenço, A Reis, AD Loguercio, PV Farago; citation_volume=61; citation_publication_date=2017; citation_pages=12-20; citation_doi=10.1016\u002Fj.jdent.2017.04.007; citation_id=CR53\ncitation_journal_title=J Mater Chem A; citation_title=Elevated salt transport of antimicrobial loose nanofiltration membranes enabled by copper nanoparticles via fast bioinspired deposition; citation_author=J Zhu, A Uliana, J Wang, S Yuan, J Li, M Tian, K Simoens, A Volodin, J Lin, K Bernaerts; citation_volume=4; citation_issue=34; citation_publication_date=2016; citation_pages=13211-13222; citation_doi=10.1039\u002FC6TA05661J; citation_id=CR54\ncitation_journal_title=Am J Nanosci Nanotechnol; citation_title=Copper nanoparticles synthesized from cinnamomum zeylanicum and its antibacterial activity; citation_author=R Kothari; citation_volume=6; citation_issue=1; citation_publication_date=2018; citation_pages=1-7; citation_id=CR55\ncitation_journal_title=Colloids Surf B Biointerfaces; citation_title=A novel study of antibacterial activity of copper iodide nanoparticle mediated by DNA and membrane damage; citation_author=A Pramanik, D Laha, D Bhattacharya, P Pramanik, P Karmakar; citation_volume=96; citation_publication_date=2012; citation_pages=50-55; citation_doi=10.1016\u002Fj.colsurfb.2012.03.021; citation_id=CR56\ncitation_journal_title=ACS Nano; citation_title=Cytotoxic origin of copper (II) oxide nanoparticles: comparative studies with micron-sized particles, leachate, and metal salts; citation_author=C Gunawan, WY Teoh, CP Marquis, R Amal; citation_volume=5; citation_issue=9; citation_publication_date=2011; citation_pages=7214-7225; citation_doi=10.1021\u002Fnn2020248; citation_id=CR57\ncitation_journal_title=Environ Sci Technol; citation_title=Antibacterial activity of nanosilver ions and particles; citation_author=GA Sotiriou, SE Pratsinis; citation_volume=44; citation_issue=14; citation_publication_date=2010; citation_pages=5649-5654; citation_doi=10.1021\u002Fes101072s; citation_id=CR58\ncitation_journal_title=Nano Lett; citation_title=Negligible particle-specific antibacterial activity of silver nanoparticles; citation_author=Z Xiu, Q Zhang, HL Puppala, VL Colvin, PJ Alvarez; citation_volume=12; citation_issue=8; citation_publication_date=2012; citation_pages=4271-4275; citation_doi=10.1021\u002Fnl301934w; citation_id=CR59\ncitation_journal_title=J Appl Microbiol; citation_title=Contact killing and antimicrobial properties of copper; citation_author=M Vincent, RE Duval, P Hartemann, M Engels-Deutsch; citation_volume=124; citation_issue=5; citation_publication_date=2018; citation_pages=1032-1046; citation_doi=10.1111\u002Fjam.13681; citation_id=CR60\ncitation_journal_title=Appl Environ Microbiol; citation_title=Bacterial killing by dry metallic copper surfaces; citation_author=CE Santo, EW Lam, CG Elowsky, D Quaranta, DW Domaille, CJ Chang, G Grass; citation_volume=77; citation_issue=3; citation_publication_date=2011; citation_pages=794-802; citation_doi=10.1128\u002FAEM.01599-10; citation_id=CR61\ncitation_journal_title=MicrobiologyOpen; citation_title=Antimicrobial metallic copper surfaces kill Staphylococcus haemolyticus via membrane damage; citation_author=CE Santo, D Quaranta, G Grass; citation_volume=1; citation_issue=1; citation_publication_date=2012; citation_pages=46-52; citation_doi=10.1002\u002Fmbo3.2; citation_id=CR62\ncitation_journal_title=Appl Environ Microbiol; citation_title=Contact killing of bacteria on copper is suppressed if bacteria-metal contact is prevented and is induced on iron by copper ions; citation_author=S Mathews, M Hans, F Mücklich, M Solioz; citation_volume=79; citation_issue=8; citation_publication_date=2013; citation_pages=2605-2611; citation_doi=10.1128\u002FAEM.03608-12; citation_id=CR63\ncitation_journal_title=Appl Environ Microbiol; citation_title=Metallic copper as an antimicrobial surface; citation_author=G Grass, C Rensing, M Solioz; citation_volume=77; citation_issue=5; citation_publication_date=2011; citation_pages=1541-1547; citation_doi=10.1128\u002FAEM.02766-10; citation_id=CR64\ncitation_journal_title=J ACS; citation_title=Kinetics of oxidation of copper (I) by molecular oxygen in perchloric acid-acetonitrile solutions; citation_author=RD Gray; citation_volume=91; citation_issue=1; citation_publication_date=1969; citation_pages=56-62; citation_id=CR65\ncitation_journal_title=Mar Chem; citation_title=The rate of reduction of copper (II) with hydrogen peroxide in seawater; citation_author=FJ Millero, V Sharma, B Karn; citation_volume=36; citation_issue=1–4; citation_publication_date=1991; citation_pages=71-83; citation_doi=10.1016\u002FS0304-4203(09)90055-X; citation_id=CR66\ncitation_journal_title=J Catal; citation_title=Fenton-like copper redox chemistry revisited: Hydrogen peroxide and superoxide mediation of copper-catalyzed oxidant production; citation_author=AN Pham, G Xing, CJ Miller, TD Waite; citation_volume=301; citation_publication_date=2013; citation_pages=54-64; citation_doi=10.1016\u002Fj.jcat.2013.01.025; citation_id=CR67\ncitation_journal_title=Chemosphere; citation_title=Kinetic modeling of Fenton oxidation of phenol and monochlorophenols; citation_author=N Kang, DS Lee, J Yoon; citation_volume=47; citation_issue=9; citation_publication_date=2002; citation_pages=915-924; citation_doi=10.1016\u002FS0045-6535(02)00067-X; citation_id=CR68\ncitation_journal_title=Acta Chim Slov; citation_title=A comparative study of several transition metals in Fenton-like reaction systems at circum-neutral pH; citation_author=M Strlic, J Kolar, V-S Selih, D Kocar, B Pihlar; citation_volume=50; citation_issue=4; citation_publication_date=2003; citation_pages=619-632; citation_id=CR69",{"VOID":1351},"10.1007\u002Fs11090-019-09980-x","2024-05-06T22:43:20.544+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11090-019-09980-x","https:\u002F\u002Flink.springer.com\u002Fcontent\u002Fpdf\u002F10.1007\u002Fs11090-019-09980-x.pdf",[1356,1371,1386,1403,1418],{"id":1357,"sortIndex":23,"researcher":22,"roles":1358,"affiliations":1359,"properties":1368,"displayName":1370,"givenName":22,"familyName":22},"c4b7b434-c4dd-49de-ad01-98847d8fbf4b",[253],[1360],{"id":1361,"sortIndex":23,"affiliation":1362,"properties":22},"10eee8ef-6d5b-4211-a5da-43bcd571eae5",{"id":1361,"createTime":22,"updateTime":22,"relativeEntities":1363,"slug":22,"properties":1364,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1367,"statistic":22},[],{"title":1365},{"VI":1366},"Department of Chemical and Biomolecular Engineering, Clarkson University, Potsdam, USA",[],{"title":1369},{"VI":1370},"Su, Xudong",{"id":1372,"sortIndex":207,"researcher":22,"roles":1373,"affiliations":1374,"properties":1383,"displayName":1385,"givenName":22,"familyName":22},"3ba9a8e4-37af-482d-b754-b855e3daecb8",[253],[1375],{"id":1376,"sortIndex":23,"affiliation":1377,"properties":22},"86b802d7-b464-470f-a6c1-f6239a406c2d",{"id":1376,"createTime":22,"updateTime":22,"relativeEntities":1378,"slug":22,"properties":1379,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1382,"statistic":22},[],{"title":1380},{"VI":1381},"Institute for a Sustainable Environment, Clarkson University, Potsdam, USA",[],{"title":1384},{"VI":1385},"Feng, Meng",{"id":1387,"sortIndex":180,"researcher":22,"roles":1388,"affiliations":1389,"properties":1398,"displayName":1400,"givenName":22,"familyName":22},"5c47a0e2-a62b-4fd5-9096-bd6739207590",[253],[1390],{"id":1391,"sortIndex":23,"affiliation":1392,"properties":22},"3b45b457-53ec-4b04-96e3-ee5717d84d85",{"id":1391,"createTime":22,"updateTime":22,"relativeEntities":1393,"slug":22,"properties":1394,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1397,"statistic":22},[],{"title":1395},{"VI":1396},"Department of Civil and Environmental Engineering, Clarkson University, Potsdam, USA",[],{"title":1399,"gsAuthor":1401},{"VI":1400},"Rogers, Shane",{"VOID":1402},"[\"NCOxh48AAAAJ\"]",{"id":1404,"sortIndex":294,"researcher":22,"roles":1405,"affiliations":1406,"properties":1413,"displayName":1415,"givenName":22,"familyName":22},"acb099ca-96d1-492b-b022-4e0c6658be1b",[253],[1407],{"id":1391,"sortIndex":23,"affiliation":1408,"properties":22},{"id":1391,"createTime":22,"updateTime":22,"relativeEntities":1409,"slug":22,"properties":1410,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1412,"statistic":22},[],{"title":1411},{"VI":1396},[],{"title":1414,"gsAuthor":1416},{"VI":1415},"Holsen, Thomas M.",{"VOID":1417},"[\"6_t0RA4AAAAJ\"]",{"id":1419,"sortIndex":501,"researcher":22,"roles":1420,"affiliations":1421,"properties":1428,"displayName":1430,"givenName":22,"familyName":22},"1e7246ea-e3bf-4478-a36c-37ca719cacca",[253],[1422],{"id":1361,"sortIndex":23,"affiliation":1423,"properties":22},{"id":1361,"createTime":22,"updateTime":22,"relativeEntities":1424,"slug":22,"properties":1425,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1427,"statistic":22},[],{"title":1426},{"VI":1366},[],{"title":1429},{"VI":1430},"Thagard, Selma Mededovic",{"url":1353,"publisher":1432,"properties":1485},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1433,"slug":10,"properties":1434,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1438,"manageAffiliations":1454,"indexDatabases":1465,"url":22,"thumbnailPath":22,"statistic":1480,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1435,"title":1436,"eissn":1437},{"VOID":15},{"EN":17},{"VOID":13},[1439,1443,1447,1451],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1440,"label":1441,"description":1442,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1444,"label":1445,"description":1446,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1448,"label":1449,"description":1450,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1452,"label":1453,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1455,1460],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1456,"slug":22,"properties":1457,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1459,"statistic":22},[],{"title":1458},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1461,"slug":22,"properties":1462,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1464,"statistic":22},[],{"title":1463},{"EN":61},[63],[1466,1473],{"id":66,"indexDatabase":1467,"url":77,"indexYears":78,"academicFieldIds":1472,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1468,"label":1469,"description":1470,"key":74,"publicationTags":1471,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1474,"url":99,"indexYears":22,"academicFieldIds":1479,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1475,"label":1476,"description":1477,"key":95,"publicationTags":1478,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1481,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1482,"totalCitation":149,"totalCitationByYear":1483,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1484,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"issue":1486,"pages":1488,"volume":1490},{"VOID":1487},"3",{"VOID":1489},"577-596",{"VOID":1491},"39",{"total":125,"publishYear":1493,"statisticByYear":1494},2019,{"2019":207,"2020":207,"2021":500,"2022":180,"2023":501,"2024":180,"2025":1495},7,"2019-05-01","2026-07-18T04:58:04.660+00:00",[97,84],{"id":1500,"createTime":1501,"updateTime":1502,"relativeEntities":1503,"slug":1504,"properties":1505,"entityType":242,"verifyStatus":243,"verifyTime":1516,"verifyNote":245,"languages":1517,"translateLanguages":22,"viewCount":23,"primaryUrl":1519,"fullTextUrl":22,"authors":1520,"publicationType":306,"publisherRelationship":1590,"citationCount":23,"citationInfo":1649,"publishDate":1652,"publishYear":1650,"citationAnalyzeStatus":1078,"lastCitationAnalyze":1653,"indexDatabases":1654,"openAccess":22,"references":1655,"isForceReanalyzing":369},"51f8de07-73c8-491f-8085-8273cb0946f7","2024-04-16T21:53:51.526+00:00","2026-07-15T06:15:42.651+00:00",[],"Oxidation-of-Dilute-Benzene-in-an-Alumina-Hybrid-Plasma-Reactor-at-Atmospheric-Pressure",{"abstract":1506,"title":1508,"gsPaper":1510,"keywords":1512,"doi":1514},{"EN":1507},"\n                The combination of plasma discharge and adsorption was examined for oxidation of dilute benzene in air in a plasma reactor packed with a mixture of BaTiO\n                3\n                pellets and porous Al\n                2\n                O\n                3\n                pellets (i.e., an alumina hybrid reactor). The oxidative decomposition of benzene was enhanced by the benzene concentrating on the Al\n                2\n                O\n                3\n                pellets. Furthermore, there was a higher selectivity to CO\n                2\n                in the products from the hybrid than from a plasma reactor packed with BaTiO\n                3\n                pellets alone. The presence of the Al\n                2\n                O\n                3\n                pellets suppressed the formation of N\n                2\n                O.\n              ",{"EN":1509},"Oxidation of Dilute Benzene in an Alumina Hybrid Plasma Reactor at Atmospheric Pressure",{"VOID":1511},"[\"14320151182272313543\"]",{"EN":1513},"",{"VOID":1515},"10.1023\u002FA:1021820403362","2024-05-05T12:38:07.704+00:00",[1518],"EN","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FA:1021820403362",[1521,1536,1549,1562,1575],{"id":1522,"sortIndex":23,"researcher":22,"roles":1523,"affiliations":1524,"properties":1533,"displayName":1535,"givenName":22,"familyName":22},"72368047-e1d8-4321-81a0-0d868bfc7399",[],[1525],{"id":1526,"sortIndex":23,"affiliation":1527,"properties":22},"ddb8d6e1-3289-466c-a844-0054dcc0e896",{"id":1526,"createTime":22,"updateTime":22,"relativeEntities":1528,"slug":22,"properties":1529,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1532,"statistic":22},[],{"title":1530},{"EN":1531},"Ibaraki, Japan",[],{"title":1534},{"EN":1535},"A. Ogata",{"id":1537,"sortIndex":207,"researcher":22,"roles":1538,"affiliations":1539,"properties":1546,"displayName":1548,"givenName":22,"familyName":22},"1d9dcb68-4bd5-4660-b37b-8b74f06d7733",[],[1540],{"id":1526,"sortIndex":23,"affiliation":1541,"properties":22},{"id":1526,"createTime":22,"updateTime":22,"relativeEntities":1542,"slug":22,"properties":1543,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1545,"statistic":22},[],{"title":1544},{"EN":1531},[],{"title":1547},{"EN":1548},"K. Yamanouchi",{"id":1550,"sortIndex":180,"researcher":22,"roles":1551,"affiliations":1552,"properties":1559,"displayName":1561,"givenName":22,"familyName":22},"48315d51-d02a-4354-a097-0c6c1f3a32ce",[],[1553],{"id":1526,"sortIndex":23,"affiliation":1554,"properties":22},{"id":1526,"createTime":22,"updateTime":22,"relativeEntities":1555,"slug":22,"properties":1556,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1558,"statistic":22},[],{"title":1557},{"EN":1531},[],{"title":1560},{"EN":1561},"K. Mizuno",{"id":1563,"sortIndex":294,"researcher":22,"roles":1564,"affiliations":1565,"properties":1572,"displayName":1574,"givenName":22,"familyName":22},"d712d4a1-51e6-4fb4-b1f1-a4b9ac46516f",[],[1566],{"id":1526,"sortIndex":23,"affiliation":1567,"properties":22},{"id":1526,"createTime":22,"updateTime":22,"relativeEntities":1568,"slug":22,"properties":1569,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1571,"statistic":22},[],{"title":1570},{"EN":1531},[],{"title":1573},{"EN":1574},"S. Kushiyama",{"id":1576,"sortIndex":501,"researcher":22,"roles":1577,"affiliations":1578,"properties":1587,"displayName":1589,"givenName":22,"familyName":22},"299e824f-0e28-4b2d-9252-18d0c4164f25",[],[1579],{"id":1580,"sortIndex":23,"affiliation":1581,"properties":22},"37d36983-2b71-40da-8725-7b812cfc61d5",{"id":1580,"createTime":22,"updateTime":22,"relativeEntities":1582,"slug":22,"properties":1583,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1586,"statistic":22},[],{"title":1584},{"VI":1585},"Osaka Prefecture University, Osaka, Japan",[],{"title":1588},{"EN":1589},"T. Yamamoto",{"url":22,"publisher":1591,"properties":1644},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1592,"slug":10,"properties":1593,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1597,"manageAffiliations":1613,"indexDatabases":1624,"url":22,"thumbnailPath":22,"statistic":1639,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1594,"title":1595,"eissn":1596},{"VOID":15},{"EN":17},{"VOID":13},[1598,1602,1606,1610],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1599,"label":1600,"description":1601,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1603,"label":1604,"description":1605,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1607,"label":1608,"description":1609,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1611,"label":1612,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1614,1619],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1615,"slug":22,"properties":1616,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1618,"statistic":22},[],{"title":1617},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1620,"slug":22,"properties":1621,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1623,"statistic":22},[],{"title":1622},{"EN":61},[63],[1625,1632],{"id":66,"indexDatabase":1626,"url":77,"indexYears":78,"academicFieldIds":1631,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1627,"label":1628,"description":1629,"key":74,"publicationTags":1630,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1633,"url":99,"indexYears":22,"academicFieldIds":1638,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1634,"label":1635,"description":1636,"key":95,"publicationTags":1637,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1640,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1641,"totalCitation":149,"totalCitationByYear":1642,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1643,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1645,"volume":1647},{"VOID":1646},"383-394",{"VOID":1648},"19",{"total":23,"publishYear":1650,"statisticByYear":1651},1999,{},"1999-09-01","2026-07-15T06:15:42.650+00:00",[97,84],[1656,1658,1660,1662,1664,1666,1668,1670,1672,1674,1676,1678,1680,1682],{"id":22,"text":1657,"url":22,"identifiers":22},"E. J. Clothiaux, J. A. Koropchak, and R. R. Moore, Plasma Chem. Plasma Process. 4, 15 (1984).",{"id":22,"text":1659,"url":22,"identifiers":22},"T. Yamamoto, K. Ramanathane, P. A. Lawless, D. S. Ensor, J. R. Newsome, N. Plaks, and G. H. Ramsey, IEEE Trans. Ind. Appl. 28, 528 (1992).",{"id":22,"text":1661,"url":22,"identifiers":22},"C. M. Nunez, G. H. Ramsey, W. H. Ponder, J. H. Abbott, L. E. Hamel, and P. H. Kariher, Air Waste 43, 242 (1993).",{"id":22,"text":1663,"url":22,"identifiers":22},"D. Evance, L. A. Rosocha, G. K. Anderson, J. J. Coogan, and M. J. Kushner, J. Appl. Phys. 74, 5378 (1993).",{"id":22,"text":1665,"url":22,"identifiers":22},"T. Oda, A. Kumada, K. Tanaka, T. Takahashi, and S. Masuda, J. Electrostat. 35, 93 (1995).",{"id":22,"text":1667,"url":22,"identifiers":22},"H. Kohno, M. Tamura, A. Shibuya, S. Honda, A. A. Berezin, and J. S. Chang, Conf. Rec. 1995 IEEE IAS Ann. Meet. (1995), pp. 1445–1452.",{"id":22,"text":1669,"url":22,"identifiers":22},"T. Yamamoto, K. Mizuno, I. Tamori, A. Ogata, M. Nifuku, M. Michalska, and G. Prieto, IEEE Trans. Ind. Appl. 32, 100 (1996).",{"id":22,"text":1671,"url":22,"identifiers":22},"R. G. Tonkyn, S. E. Barlow, and T. M. Orlando, J. Appl. Phys. 80, 4877 (1996).",{"id":22,"text":1673,"url":22,"identifiers":22},"M. Nifuku, M. Horvath, J. Bodnar, G. Zhang, T. Tanaka, E. Kiss, G. Woynarovich, and H. Katoh, J. Electrostat. 40, 41, 687 (1997).",{"id":22,"text":1675,"url":22,"identifiers":22},"S. Futamura, A. H. Zhang, and T. Yamamoto, J. Electrostat. 42, 51 (1997).",{"id":22,"text":1677,"url":22,"identifiers":22},"A. Ogata, N. Shintani, K. Mizuno, S. Kushiyama, and T. Yamamoto, Conf. Rec. 1997 IEEE IAS Annu. Meet. (1997), pp. 1975–1982.",{"id":22,"text":1679,"url":22,"identifiers":22},"A. Ogata, K. Mizuno, S. Kushiyama, and T. Yamamoto, Plasma Chem. Plasma Process. 18, 363 (1998).",{"id":22,"text":1681,"url":22,"identifiers":22},"V. N. Filimonov, Yu. N. Lopatin, and D. A. Sukhov, Kinet. Katal. 10, 458 (1969).",{"id":22,"text":1683,"url":22,"identifiers":22},"A. Oumghar, J. C. Legrand, A. M. Diamy, and N. Turillon, Plasma Chem. Plasma Process. 15, 87 (1995).",{"id":1685,"createTime":1686,"updateTime":1687,"relativeEntities":1688,"slug":1689,"properties":1690,"entityType":242,"verifyStatus":243,"verifyTime":1701,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1702,"fullTextUrl":22,"authors":1703,"publicationType":306,"publisherRelationship":1732,"citationCount":156,"citationInfo":1791,"publishDate":1795,"publishYear":1792,"citationAnalyzeStatus":21,"lastCitationAnalyze":1796,"indexDatabases":1797,"openAccess":22,"references":22,"isForceReanalyzing":369},"ccde01c9-4c3f-4e2e-808d-715ac0deb2c3","2023-12-07T04:12:36.838+00:00","2026-07-14T17:01:30.836+00:00",[],"Hydrocarbon-Effects-on-the-Promotion-of-Non-Thermal-Plasma-NO-NO2-Conversion",{"abstract":1691,"title":1693,"gsPaper":1695,"references":1697,"doi":1699},{"EN":1692},"Kinetic modeling of non-thermal plasma chemistry is conducted to investigate hydrocarbon (CH4, C2H4, C3H6, and C3H8) effects on the promotion of NO–NO2 conversion. A reduced plasma chemistry model, in which radical reactions are selectively involved, is validated with experimental data. The higher reactivity of hydrocarbon additive with O radicals, which produces initial radicals, is requisite to initiate hydrocarbon decomposition, thus providing NO–NO2 conversion. Initial radicals by plasma discharge induce continual hydrocarbon decomposition and this self-preserved reaction mechanism greatly contributes to the promotion of energy efficient NO–NO2 conversion. Increase in the conversion extent by ethylene and propylene additives is substantial because of their stronger affinity with O radical. The primary routes of NO–NO2 conversion process differed by hydrocarbon additives are presented and discussed with the assistance of sensitivity analysis.",{"EN":1694},"Hydrocarbon Effects on the Promotion of Non-Thermal Plasma NO–NO2 Conversion",{"VOID":1696},"[\"15923977343709713319\"]",{"VOID":1698},"G. M. Reza and B. Rodica, NOx reduction using injection rate shaping and intercooling in diesel engines, SAE 960845 (1996).\nL. Nicos, B. Razmik, H. Roy, and C. Laurence, The effect of exhaust gas recirculation on combustion and NOx emissions in a high-speed direct-injection disel engines, SAE 960840 (1996).\nW. Christopher et al., Emissions control technology for locomotive engines, SAE 940453 (1994).\nM. Kawanami, M. Horiuchi, J. Leyrer, E. Lox, and D. Psaras, Advanced catalyst studies of diesel NOx reduction for on highway trucks, SAE 950154, SAE Trans., Vol. 104, Section 3 (1995).\nC. Havenith and R. P. Verbeek, Transient performance of a urea DeNOx catalyst for low emissions heavy duty diesel engines, SAE 970185 (1997).\nJ. S. Gieshoff et al., Improved CR systems for heavy duty applications, SAE 2000–01-0189 (2000).\nW. R. Miller et al., The development of urea-SCR technology for US heavy duty trucks, SAE 2000–01-0190 (2000).\nA. Mizuno, A. Chakrabarti, and K. Okazaki, Application of corona technology in the reduction of greenhouse gases and other gaseous pollutants, NATO ASI Series, Vol. G34, Part B, Springer-Verlag, Berlin, Heidelberg (1993).\nG. E. Vogtlin and B. M. Penentrante, Pulsed corona discharge for removal of NOx from flue gas, NATO ASI Series, Vol. G34, Part B, Springer-Verlag, Berlin, Heidelberg (1993).\nJ. Hoard et al., Comparison of plasma-catalyst and lean NOx catalyst for diesel NOx reduction, 2000–01-2895 SAE (2000).\nB. H. Chun et al., Plasma\u002Fcatalyst system for reduction of Nox in diesel engine exhaust, 2000–01-2897 SAE (2000).\nB. M. Penetrante et al., Plasma-assisted catalyst reduction of NOx, SAE 98222508 (1998).\nB. M. Penetrante, Plasma chemistry and power consumption in non-thermal DeNOx, NATO ASI Series, Vol. G34, Part A, B. M. Penetrante and S. E. Schultheis, eds. (1993).\nK. Fujii, M. Higashi, and N. Suzuki, Simultaneous removal of NOx, COx, SOx, and soot in diesel engine exhaust, NATO ASI Series, Vol. G34, Part B, Springer-Verlag, Berlin, Heidelberg (1993).\nS. Masuda, Report on Novel dry DeNOx\u002FDeSOx technology for cleaning combustion gases from utility thermal power plant boilers, NATO ASI Series, Vol. G34, Part B, B. M. Penetrante and S. E. Schultheis, eds. (1993).\nB. M. Penetrante et al., Effect of hydrocarbons on plasma treatment of NOz, Proceedings of the 1997 Diesel Engine Emissions Reduction Workshop (1997).\nR. Dorai and M. J. Kushner, Effect of propylene on the remediation of NOx from engine exhaust, SAE 1999–01-3683 (1999).\nW. J. Pitz et al., Preprint for 1997 Fall Meeting of the Western States Section of the Combustion Institute, October 23–27 (1997).\nW. Niessen et al., J. Phys. D: Appl. Phys. 31, 542–550 (1998).\nI. Orlandini and U. Riedel, J. Phys. D: Appl. Phys. 33, 2467–2474 (2000).\nH. Matzing, Adv. Chem. Phys. 80, 315–402 (1991).\nC. R. McLarnon and B. M. Penetrante, Effect of gas composition on the NOx conversion chemistry in a plasma, SAE 982433 (1998).\nW. L. Morgan et al., Comp. Phys. Commun. 58, 127–154 (1990).\nR. J. Kee et al., Chemkin III—A Fortran chemical kinetics package for the analysis of gasphase chemical and plasma kinetics, SAND 96–8216, Sandia National Laboratory (1996).\nA. Deryugin et al., Plasma Chem. Plasma Process. 17, xxx(1997).\nB. M. Penetrante et al., Preprint for the Proceedings of the 1997 Diesel Engine Emission Reduction Workshop, San Diego, California, July 28–31 (1997).\nN. Marinov et al., Preprint of 27th International Symposium on Combustion Boulder, CO, September 2–7 (1998).\nW. G. Mallard et al., NIST Chemical Kinetic Database, Version 6.01, NIST Standard Ref. Data, Gaithersburg, MD (1994).\nA. E. Lutz et al., Senkin: A Fortran program for predicting homogeneous gas phase chemical kinetics with sensitivity analysis, SAND 87–8248, Sandia National Laboratory (1988).\nA. Mizuno et al., IEEE 1808–1812 (1996).\nJ. Hoard and M. L. Balmer, Analysis of plasma-catalysis for diesel NOx remediation, 982429 SAE (1998).\nB. M. Penetrante et al., Feasibility of plasma aftertreatment for simultaneous control of NOx particulates, 993637 SAE (1999).",{"VOID":1700},"10.1023\u002FA:1025595318945","2024-05-10T12:35:21.206+00:00","http:\u002F\u002Flink.springer.com\u002F10.1023\u002FA:1025595318945",[1704,1719],{"id":1705,"sortIndex":23,"researcher":22,"roles":1706,"affiliations":1707,"properties":1716,"displayName":1718,"givenName":22,"familyName":22},"282c1367-f995-4771-b9a8-aba8785941e6",[253],[1708],{"id":1709,"sortIndex":23,"affiliation":1710,"properties":22},"5673211d-fd58-41a4-b639-6310aa4b330b",{"id":1709,"createTime":22,"updateTime":22,"relativeEntities":1711,"slug":22,"properties":1712,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1715,"statistic":22},[],{"title":1713},{"VI":1714},"Mechanical Engineering Department, Yonsei University, Seoul, Korea",[],{"title":1717},{"VI":1718},"Hyun-Ho Shin",{"id":1720,"sortIndex":207,"researcher":22,"roles":1721,"affiliations":1722,"properties":1729,"displayName":1731,"givenName":22,"familyName":22},"7cab6e32-8455-460e-82c1-798d20d7bb47",[253],[1723],{"id":1709,"sortIndex":23,"affiliation":1724,"properties":22},{"id":1709,"createTime":22,"updateTime":22,"relativeEntities":1725,"slug":22,"properties":1726,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1728,"statistic":22},[],{"title":1727},{"VI":1714},[],{"title":1730},{"VI":1731},"Woong-Sup Yoon",{"url":1702,"publisher":1733,"properties":1786},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1734,"slug":10,"properties":1735,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1739,"manageAffiliations":1755,"indexDatabases":1766,"url":22,"thumbnailPath":22,"statistic":1781,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1736,"title":1737,"eissn":1738},{"VOID":15},{"EN":17},{"VOID":13},[1740,1744,1748,1752],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1741,"label":1742,"description":1743,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1745,"label":1746,"description":1747,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1749,"label":1750,"description":1751,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1753,"label":1754,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1756,1761],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1757,"slug":22,"properties":1758,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1760,"statistic":22},[],{"title":1759},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1762,"slug":22,"properties":1763,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1765,"statistic":22},[],{"title":1764},{"EN":61},[63],[1767,1774],{"id":66,"indexDatabase":1768,"url":77,"indexYears":78,"academicFieldIds":1773,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1769,"label":1770,"description":1771,"key":74,"publicationTags":1772,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1775,"url":99,"indexYears":22,"academicFieldIds":1780,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1776,"label":1777,"description":1778,"key":95,"publicationTags":1779,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1782,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1783,"totalCitation":149,"totalCitationByYear":1784,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1785,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1787,"volume":1789},{"VOID":1788},"681-704",{"VOID":1790},"23",{"total":156,"publishYear":1792,"statisticByYear":1793},2003,{"2005":294,"2006":207,"2007":1495,"2008":294,"2010":294,"2011":207,"2012":294,"2013":1794,"2015":207,"2016":294,"2017":500,"2018":207,"2019":207,"2021":207,"2023":294,"2025":207},9,"2003-12-01","2026-07-14T17:01:30.835+00:00",[97,84],{"id":1799,"createTime":1800,"updateTime":1801,"relativeEntities":1802,"slug":1803,"properties":1804,"entityType":242,"verifyStatus":243,"verifyTime":1814,"verifyNote":245,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1815,"fullTextUrl":22,"authors":1816,"publicationType":306,"publisherRelationship":1847,"citationCount":22,"citationInfo":22,"publishDate":1906,"publishYear":1907,"citationAnalyzeStatus":1177,"lastCitationAnalyze":1908,"indexDatabases":1909,"openAccess":22,"references":22,"isForceReanalyzing":369},"b13fa30a-6491-4440-814e-7363a2b0d689","2024-01-16T20:59:14.691+00:00","2026-07-11T23:07:10.642+00:00",[],"Formation-of-Negative-Hydrogen-Ions-in-a-Ne-H2-Hollow-Cathode-Discharge",{"abstract":1805,"title":1807,"gsPaper":1809,"references":1810,"doi":1812},{"EN":1806},"The formation of negative hydrogen ions in a conventional hollow cathode discharge has been investigated. A mixture of Ne and H2 proved to be more advantageous compared to pure hydrogen. The study has been performed by solving the electron Boltzmann equation, coupled with a system of balance equations for neon and hydrogen neutral and charged particles. The vibrational distribution function of hydrogen has been calculated. Our calculations show unusually high population of vibrationally excited hydrogen molecules in a Ne–H2 mixture, which explains the high density of negative hydrogen ions under optimal conditions (total gas pressure of few Torr, hydrogen number mole fraction of 1–10% and discharge current of 10–100 mA). Line intensities originating from highly excited neon states vs. hydrogen pressure have been calculated and a comparison with existing experimental results has been made.",{"EN":1808},"Formation of Negative Hydrogen Ions in a Ne–H2 Hollow Cathode Discharge",{"VOID":1093},{"VOID":1811},"O. Fukumasa and M. Matsumori, Jpn. J. Appl. Phys. 38, Part 1, 4581 (1999).\nJ. R. Hiskes and A. M. Karo, J. Appl. Phys. 56(7), 1927 (1984).\nM. Bacal, A. M. Bruneteau, W. G. Graham, G. W. Hamilton, and M. Nachman, J. Appl. Phys. 52(3), 1247 (1981).\nL. A. Pinnaduwage and L. G. Christophorou, J. Appl. Phys. 76(1), 46 (1994).\nP. J. Enshuistra, M. Gochitashvilli, R. Becker, A. W. Kleyn, and H. J. Hopman, J. Appl. Phys. 67(1), 85 (1990).\nM. Bacal and G. W. Hamilton, Phys. Rev. Lett 47, 1538 (1979).\nJ. R. Hiskes and A. M. Karo, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 517 (1990).\nA. A. Mullan and W. G. Graham, J. Phys. D 24, 1533 (1991).\nA. M. Bruneteau, G. Hollos, M. Bacal, and J. Bretagne, J. Appl. Phys. 67(12), 7254 (1990).\nA. Al-Jibouri, A. J. Holmes, and W. G. Graham, Plasma Sources, Sci. Tech. 5, 401 (1996).\nH.-M. Katsch and E. Quandt, J. Phys. D 25, 430 (1992).\nM. Bacal, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 213 (1990).\nP. A. Pogorelli and A. M. Shukhtin, Opt. Spectrosc. (USSR) 38, 134 (1975).\nV. D. Dougar-Jabon, Phys. Scripta 63, 322 (2001).\nP. G. Datskos and L. A. Pinnaduwage, Phys. Rev. A 55, 4131 (1997).\nO. Fukumasa and S. Saeki, J. Phys. D 18, L21 (1985).\nO. Fukumasa, J. Phys. D 22, 1668 (1989).\nO. Fukumasa and S. Ohashi, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 505 (1990).\nO. Fukumasa, J. Appl. Phys. 71(7), 3193 (1992).\nC. Gorse, M. Capitelli, M. Bacal, J. Bretagne, and A. Laganà, Chem. Phys. 117, 177 (1987).\nW. G. Graham, Plasma Sources Sci. Tech. 4, 281 (1995).\nJ. R. Hiskes and A. M. Karo, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 525 (1990).\nP. Berlemont, D. A. Skinner, and M. Bacal, Rev. Sci. Instrum. 64, 2721 (1993).\nM. Capitelli and C. Gorse, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 45 (1990).\nC. Gorse, M. Capitelly, J. Bretagne, and M. Bacal, Chem. Phys. 93, 1 (1985).\nN. P. Curran, M. B. Hopkins, D. Vender, and B. W. James, Plasma Sources Sci. Tech. 9, 169 (2000).\nJ. Amorim, J. Loureiro, G. Baravian, and M. Touzeau, J. Appl. Phys. 82(6), 2795 (1997).\nJ. L. Giuliani, V. A. Shamamian, R. E. Thomas, J. P. Apruzese, M. Milbrandon, R. A. Rudder, R. C. Hendry, and R. E. Robson, IEEE Trans. Plasma Sci. 27, 1317 (1999).\nK. Hassouni, T. A. Grotjohn, and A. Gicquel, J. Appl. Phys. 86(1), 134 (1999).\nK. Hassouni, A. Gicquel, M. Capitelli, and J. Loureiro, Plasma Sources Sci. Tech. 8, 494 (1999).\nH. Rau, J. Phys. D 33, 3214 (2000).\nP. André, J. Aubreton, M. F. Elchinger, P. Fauchais, and A. Lefort, Plasma Chem. Plasma Proc. 21, 83 (2001).\nA. Lacoste, L. L. Alves, C. M. Ferreira, and G. Gousset, J. Appl. Phys. 88(6), 3170 (2000).\nT. G. Beuthe and J.-S. Chang, Jpn. J. Appl. Phys. Part 1 38, 4576 (1999).\nC.-H. Yang, K. Itoh, H. Tomita, and M. Obara, J. Appl. Phys. 78(1), 30 (1995).\nG. M. Petrov, J. Phys. D 30, 67 (1997).\nR. R. Arslanbekov, A. A. Kudryavtsev, and I. A. Movchan, Soviet Phys. Tech. Phys. 37, 620 (1992).\nR. R. Arslanbekov, A. A. Kudryavtsev, and I. A. Movchan, Sov. Phys. Tech. Phys. 37, 1004 (1992).\nR. R. Arslanbekov and A. A. Kudryavtsev, Phys. Rev. E 58(5), part B 6539 (1998).\nS. Hashiguchi an M. Hasikuni, Jap. J. Appl. Phys. Part 1, 27(10), 2007 (1998).\nN. B. Kolokolov, A. A. Kudryavtsev, and A. B. Blagoev, Phys. Scripta. 50, 371 (1994).\nR. Winkler, J. Wilhelm, and S. I. Krasheninnikov, Annalen der Physik 39, 241 (1982).\nJ. Bretagne, G. Delouya, J. Godart, and V. Puech, J. Phys. D 14, 1225 (1981).\nC. B. Opal, E. C. Beaty, and W. K. Peterson, Atomic Data 4(3), 209 (1972).\nG. M. Petrov and R. Winkler, J. Phys. D 30, 53 (1997).\nJ. Loureiro and C. M. Ferreira, J. Phys. D 22, 1680 (1989).\nA. Garscadden and R. Nagpal, Plasma Sources Sci. Tech. 4, 268 (1995).\nJ. Loureiro and A. Ricard, J. Phys. D 26, 163 (1993).\nM. Capitelli, C. Gorse, J. Wilhelm, and R. Winkler, Nuovo Cimento 70, 163 (1982).\nR. Winkler, J. Wilhelm, S. I. Krasheninnikov, and V. V. Starykh, Annalen der Physik 39, 216 (1982).\nM. Cacciatore, Nonequilibrium Processes in Partially Ionized Gases, Plenum Press, New York, 485 (1990).\nS. J. Buckman and A. V. Phelps, JILA Information Center Report N. 27 (1985).\nH. Tawara, Y. Itikawa, H. Nishimura, and M. Yoshino, J. Phys. Chem. Ref. Data 19, 617 (1990).\nC. Mündel, M. Berman, and W. Domcke, Phys. Rev. A 32, 181 (1985).\nA. U. Hazi, Phys. Rev. A 23, 2232 (1981).\nW. T. Miles, R. Thompson and A. E. S. Green, J. Appl. Phys. 43(2), 678 (1972).\nJ. R. Hiskes, J. Appl. Phys. 51(9), 4592 (1980).\nG. D. Billing, Chem. Phys. 43, 395 (1979).\nV. L. Orkin, V. G. Fedotov, and A. M. Chaikin, Kinetics and Catalysis 18, 41 (1977).\nG. Black, H. Wise, S. Schechter, and R. L. Sharpless, J. Chem. Phys. 60, 3526 (1974).\nM. Yamane, J. Chem. Phys. 49, 4624 (1968).\nE. Graham IV, D. R. James, W. C. Keever, I. R. Gatland, D. L. Albritton, and E. W. McDaniel, J. Chem. Phys. 59, 4648 (1973).\nV. Aquilanti, A. Galli, A. Giardini-Guidoni, and G. G. Volpi, J. Chem. Phys. 43, 1969 (1965).\nS. Laube, A. Le Padellec, O. Sidko, C. Rebrion-Rowe, J. B. A. Mitchell, and B. R. Rowe, J. Phys. B 31, 2111 (1998).\nK. Hiraoka and P. Kebarle, J. Chem. Phys. 63, 746 (1975).\nU. A. Arifov, S. L. Pozharov, I. G. Chernov, and Z. A. Mukhamediev, X-th ICPIG 71, Oxford, 11 (1971).\nT. F. Moran and L. Friedman, J. Chem. Phys. 39, 2491 (1963).\nK. R. Ryan and I. G. Graham, J. Chem. Phys. 59, 4260 (1973).\nH. W. Ellis, R. Y. Pal, E. W. McDaniel, E. A. Mason, and L. A. Viehland, Atomic Data Nuclear Data Tables 17, 177 (1976).\nE. W. McDaniel and E. A. Mason, The mobility and diffusion of ions in gases, New York, John Wiley & Sons (1973).\nF. Brouillard and J. W. McCowan, Physics of ion and electron-ion collisions, Plenum Press, New York and London (1983).\nD. F. Register, S. Trajmar, G. Steffensen, and D. C. Cartwright, Phys. Rev. A 29, 1793 (1984).\nR. S. Freund, R. C. Wetzel, R. J. Shul, and T. R. Hayes, Phys. Rev. A 41, 3575 (1990).\nL. Vriens and A. H. M. Smeets, Phys. Rev. A 22(3), 940 (1980).\nA. L. Zagrebin and E. P. Permogorova, Sov. Phys. Tech. Phys. 62, 44 (1992).\nM. Allan and S. F. Wong, Phys. Rev. Lett. 41, 1791 (1978).\nJ. P. Gauyacq, J. Phys. B 18, 1859 (1985).\nA. P. Hickman, Phys. Rev. A 43, 3495 (1991).\nJ. M. Wadehra and J. N. Bardsley, Phys. Rev. Lett. 41, 1795 (1978).\nJ. N. Bardsley and J. M. Wadehra, Phys. Rev. A 20, 1398 (1979).\nI. S. Yelets and A. K. Kazansky, XIII-th International Conference on the Physics of Electronic and Atomic Collisions, Berin, 287 (1983).\nL. A. Pinnaduwage and L. G. Christophorou, Phys. Rev. Lett. 70, 754 (1993).\nL. A. Pinnaduwage, W. X. Ding, W. L. McCorkle, C. H. Lin, A. M. Mebel, and A. Garscadden, J. Appl. Phys. 85(10), 7064 (1999).\nK. Hassouni, A. Gicquel, and M. Capitelli, Chem. Phys. Lett. 290, 502 (1998).\nJ. R. Peterson, W. A. Aberth, J. T. Moseley, and J. R. Sheridan, Phys. Rev. A 3, 1651 (1971).\nM. S. Huq, L. D. Doverspike, and R. L. Champion, Phys. Rev. A 27, 2831 (1983).\nB. Peart, D. S. Walton, and K. T. Dolder, J. Phys. B 3, 1346 (1970).\nJ. O. Hirschfelder, C. E. Curtiss, and R. B. Bird, Molecular Theory of Gases and Liquids, John Wiley & Sons, New York (1954).\nA. D. Tserepi and T. A. Miller, J. Appl. Phys. 75, 7231 (1994).\nM. Rutigliano, M. Cacciatore, and G. D. Billing, Chem. Phys. Lett. 340, 13 (2001).\nG. M. Petrov, J. P. Matte, I. Peres, J. Margot, T. Sadi, J. Hubert, K. C. Tran, L. Alves, J. Loureiro, C. M. Ferreira, and G. Gousset, Plasma Chem. Plasma Proc. 20, 183 (2000).\nV. Mihailov, V. Gencheva, and R. Djulgerova, J. Phys. D: Appl. Phys. 34, 2185 (2001).\nH. W. Drawin, Z. Physik 225, 483 (1969).\nP. F. Gruzdev, Transition probabilities and radiative lifetimes of atoms and ions, Moskva, Energoatomizdat (1990).",{"VOID":1813},"10.1023\u002FA:1021323714026","2024-06-25T18:22:43.760+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FA:1021323714026",[1817,1832],{"id":1818,"sortIndex":23,"researcher":22,"roles":1819,"affiliations":1820,"properties":1829,"displayName":1831,"givenName":22,"familyName":22},"05dbf619-7621-4ade-bb34-ecf838aa30ea",[253],[1821],{"id":1822,"sortIndex":23,"affiliation":1823,"properties":22},"fbada530-7f2e-4846-ab2c-20c3427764ae",{"id":1822,"createTime":22,"updateTime":22,"relativeEntities":1824,"slug":22,"properties":1825,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1828,"statistic":22},[],{"title":1826},{"VI":1827},"Berkeley Scholars, Inc., Springfield, USA",[],{"title":1830},{"VI":1831},"G. M. Petrov",{"id":1833,"sortIndex":207,"researcher":22,"roles":1834,"affiliations":1835,"properties":1844,"displayName":1846,"givenName":22,"familyName":22},"2c079c3f-cbe1-4266-9d9b-4edf28b1e1fe",[253],[1836],{"id":1837,"sortIndex":23,"affiliation":1838,"properties":22},"99fd5aa9-6bf2-4cdf-b070-1408096ed008",{"id":1837,"createTime":22,"updateTime":22,"relativeEntities":1839,"slug":22,"properties":1840,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1843,"statistic":22},[],{"title":1841},{"VI":1842},"Fusion Lighting, Inc., Rockville, USA",[],{"title":1845},{"VI":1846},"Ts. Petrova",{"url":1815,"publisher":1848,"properties":1901},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1849,"slug":10,"properties":1850,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1854,"manageAffiliations":1870,"indexDatabases":1881,"url":22,"thumbnailPath":22,"statistic":1896,"gsStatistic":22,"type":221,"analyzePriority":22},[],{"issn":1851,"title":1852,"eissn":1853},{"VOID":15},{"EN":17},{"VOID":13},[1855,1859,1863,1867],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1856,"label":1857,"description":1858,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1860,"label":1861,"description":1862,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1864,"label":1865,"description":1866,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},{"id":44,"createTime":22,"updateTime":22,"relativeEntities":1868,"label":1869,"description":22,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":47},[1871,1876],{"id":50,"createTime":22,"updateTime":22,"relativeEntities":1872,"slug":22,"properties":1873,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1875,"statistic":22},[],{"title":1874},{"EN":54},[],{"id":57,"createTime":22,"updateTime":22,"relativeEntities":1877,"slug":22,"properties":1878,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1880,"statistic":22},[],{"title":1879},{"EN":61},[63],[1882,1889],{"id":66,"indexDatabase":1883,"url":77,"indexYears":78,"academicFieldIds":1888,"indexDatabaseRanking":84},{"id":68,"createTime":22,"updateTime":22,"relativeEntities":1884,"label":1885,"description":1886,"key":74,"publicationTags":1887,"standard":22},[],{"EN":71,"VI":71},{"EN":71,"VI":73},[76],[80,81,82,83],{"id":86,"indexDatabase":1890,"url":99,"indexYears":22,"academicFieldIds":1895,"indexDatabaseRanking":22},{"id":88,"createTime":22,"updateTime":22,"relativeEntities":1891,"label":1892,"description":1893,"key":95,"publicationTags":1894,"standard":22},[],{"EN":91,"VI":91},{"EN":93,"VI":94},[97,98],[101,102],{"impactFactor":23,"impactFactorByYear":1897,"i10Index":117,"i10IndexLast5Year":118,"totalPublication":119,"totalPublicationByYear":1898,"totalCitation":149,"totalCitationByYear":1899,"totalCitationPerPublication":181,"totalCitationPerPublicationByYear":1900,"hindexLast5Year":220,"hindex":220},{"2012":105,"2013":106,"2014":107,"2015":108,"2016":109,"2017":110,"2018":111,"2019":112,"2020":113,"2021":114,"2022":115,"2023":116},{"1981":121,"1982":122,"1983":123,"1984":122,"1985":124,"1986":125,"1987":126,"1988":127,"1989":128,"1990":129,"1991":127,"1992":130,"1993":126,"1994":131,"1995":128,"1996":132,"1997":133,"1998":124,"1999":125,"2000":123,"2001":133,"2002":125,"2003":129,"2004":118,"2005":134,"2006":135,"2007":136,"2008":137,"2009":134,"2010":138,"2011":139,"2012":140,"2013":141,"2014":142,"2015":143,"2016":143,"2017":144,"2018":139,"2019":145,"2020":145,"2021":146,"2022":147,"2023":148,"2024":127},{"1981":151,"1982":152,"1983":153,"1984":154,"1985":155,"1986":156,"1987":157,"1988":141,"1989":158,"1990":159,"1991":160,"1992":161,"1993":155,"1994":162,"1995":163,"1996":139,"1997":139,"2004":164,"2005":165,"2006":166,"2007":167,"2008":168,"2009":169,"2010":170,"2011":139,"2012":171,"2013":172,"2014":173,"2015":174,"2016":175,"2017":176,"2018":177,"2019":178,"2020":153,"2021":179,"2022":143,"2023":118,"2024":180},{"1981":183,"1982":184,"1983":185,"1984":186,"1985":187,"1986":188,"1987":189,"1988":190,"1989":191,"1990":192,"1991":193,"1992":194,"1993":195,"1994":196,"1995":197,"1996":198,"1997":199,"2004":200,"2005":201,"2006":202,"2007":203,"2008":204,"2009":205,"2010":206,"2011":207,"2012":208,"2013":209,"2014":210,"2015":211,"2016":212,"2017":213,"2018":214,"2019":215,"2020":216,"2021":217,"2022":218,"2023":105,"2024":219},{"pages":1902,"volume":1904},{"VOID":1903},"573-605",{"VOID":1905},"22","2002-12-01",2002,"2026-07-11T23:07:10.641+00:00",[97,84]]