[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_62eebf54-a3e0-4160-8025-7990eb8d61c3":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:62eebf54-a3e0-4160-8025-7990eb8d61c3,\"}":208},{"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,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":24,"manageAffiliations":65,"indexDatabases":88,"url":22,"thumbnailPath":22,"statistic":131,"gsStatistic":22,"type":207,"analyzePriority":22},"62eebf54-a3e0-4160-8025-7990eb8d61c3","2024-04-09T01:56:20.016+00:00","2025-11-21T09:53:39.729+00:00",[],"Journal-of-Materials-Science",{"issn":12,"eissn":14,"title":16,"url":18},{"VOID":13},"15734803",{"VOID":15},"00222461",{"EN":17},"Journal of Materials Science",{"VOID":19},"https:\u002F\u002Flink.springer.com\u002Fjournal\u002F10853","PUBLISHER","PENDING",null,0,[25,33,41,49,57],{"id":26,"createTime":27,"updateTime":28,"relativeEntities":29,"label":30,"description":32,"parentId":22,"standard":22,"scholarHubFieldId":22},"381e321f-8964-4eb6-b656-46742c2b3112","2023-05-29T10:24:06.166+00:00","2023-11-21T08:11:28.209+00:00",[],{"EN":31},"Ceramics and Composites",{},{"id":34,"createTime":35,"updateTime":36,"relativeEntities":37,"label":38,"description":40,"parentId":22,"standard":22,"scholarHubFieldId":22},"d814c312-0062-46bd-9e15-ca5c31c2d5a3","2023-05-29T10:24:17.231+00:00","2023-11-21T08:11:28.215+00:00",[],{"EN":39},"Mechanics of Materials",{},{"id":42,"createTime":43,"updateTime":44,"relativeEntities":45,"label":46,"description":48,"parentId":22,"standard":22,"scholarHubFieldId":22},"79a8e82a-054c-43cf-95b7-09be5b5aa6cf","2023-05-29T10:24:02.077+00:00","2023-11-20T23:35:51.886+00:00",[],{"EN":47},"Polymers and Plastics",{},{"id":50,"createTime":51,"updateTime":52,"relativeEntities":53,"label":54,"description":56,"parentId":22,"standard":22,"scholarHubFieldId":22},"bd96c813-15c1-414e-bf13-8cb25565afd7","2023-05-29T10:24:06.145+00:00","2023-11-21T07:47:09.750+00:00",[],{"EN":55},"Materials Science (miscellaneous)",{},{"id":58,"createTime":59,"updateTime":60,"relativeEntities":61,"label":62,"description":64,"parentId":22,"standard":22,"scholarHubFieldId":22},"5587dea8-ebb6-4a42-8493-b6dd63ea819a","2023-05-29T10:24:08.061+00:00","2023-11-21T07:32:48.048+00:00",[],{"EN":63},"Mechanical Engineering",{},[66,79],{"id":67,"createTime":68,"updateTime":69,"relativeEntities":70,"slug":71,"properties":72,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":76,"url":22,"parentIds":77,"statistic":22},"b2bfac93-563a-4fa4-bd81-e546a66bf9bd","2023-05-29T10:24:01.641+00:00","2025-11-21T10:06:17.751+00:00",[],"Springer-Netherlands",{"title":73},{"EN":74},"Springer Netherlands","AFFILIATION",8,[78],"9a7c7208-b28a-42c2-a634-5a7f90eee3ab",{"id":80,"createTime":81,"updateTime":82,"relativeEntities":83,"slug":84,"properties":85,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"url":22,"parentIds":87,"statistic":22},"26a19206-5cad-4456-bb2f-49abd254fbc6","2024-04-19T01:59:34.612+00:00","2025-11-21T10:06:47.646+00:00",[],"SPRINGER",{"title":86},{"EN":84},[],[89,112],{"id":90,"indexDatabase":91,"url":103,"indexYears":104,"academicFieldIds":105,"indexDatabaseRanking":111},"3fe9beab-1127-4440-bc74-c408f1bc3647",{"id":92,"createTime":93,"updateTime":94,"relativeEntities":95,"label":96,"description":98,"key":100,"publicationTags":101,"standard":22},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9","2023-05-22T09:57:18.509+00:00","2025-11-21T10:07:52.274+00:00",[],{"EN":97,"VI":97},"Scopus - Elsevier",{"EN":97,"VI":99},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[102],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F21162","1966-2025",[106,107,108,109,110],"76b27e7b-b898-4984-840f-82bdc7571fb3","65de7142-f2d8-490a-83cb-10f777c77259","0923a86b-758a-448d-bfda-c2e8f8b4c7af","9d2ac5e3-41a0-4e3f-9001-acfb87e489bc","60414621-4769-4111-bbfc-204017405247","SCOPUS__Q1",{"id":113,"indexDatabase":114,"url":128,"indexYears":22,"academicFieldIds":129,"indexDatabaseRanking":22},"ad0336a3-90d6-433c-b3e9-60c3435c2466",{"id":115,"createTime":116,"updateTime":117,"relativeEntities":118,"label":119,"description":121,"key":124,"publicationTags":125,"standard":22},"a4921856-b128-4d9f-8f1f-e80813d3bbd4","2023-05-22T09:59:31.026+00:00","2025-11-21T10:07:52.153+00:00",[],{"EN":120,"VI":120},"ISI\u002FSCIE - Science Citation Index Expanded",{"VI":122,"EN":123},"Cơ sở dữ liệu SCIE","SCIE database","scie",[126,127],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=0022-2461",[130],"0db73426-2364-455f-81a4-efe0f91d712e",{"impactFactor":23,"impactFactorByYear":132,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":138,"totalCitation":194,"totalCitationByYear":195,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":202,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},0.13,0.2,28,27,23304,{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},47,59,74,130,95,148,158,174,214,189,226,218,259,307,249,212,272,287,410,362,339,428,595,561,380,150,209,487,439,381,390,436,406,354,332,1470,611,665,808,524,625,535,475,491,457,453,548,632,699,543,719,537,757,616,168,707,{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},5,9,10,680,3,0.03,{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},0.01,0.02,0.95,15,"JOURNAL",{"meta":209,"data":211},{"total":210},"29591",[212,300,396,507,663,790,922,1042,1133,1226],{"id":213,"createTime":214,"updateTime":215,"relativeEntities":216,"slug":217,"properties":218,"entityType":227,"verifyStatus":228,"verifyTime":215,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":230,"fullTextUrl":22,"authors":231,"publicationType":261,"publisherRelationship":262,"citationCount":22,"citationInfo":22,"publishDate":297,"publishYear":298,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"334d43a2-29e8-4778-ad72-527b7636bd54","2024-02-10T16:04:18.928+00:00","2025-02-13T23:59:54.133+00:00",[],"Deformed-metals-and-alloys-with-a-structural-scale-from-5-nm-to-100-nm",{"references":219,"abstract":221,"title":223,"doi":225},{"VOID":220},"Script Mater 51 (2004) 751–841 (Viewpoint Set NO. 35. ‘Metals and alloys with a structural scale from the micrometer to the atomic dimension’, edited by N. Hansen)\nValiev RZ, Islamgaliev RK, Alexandrov IV (2000) Progr Mater Sci 45:103\nRichert M, Liu Q, Hansen N (1998) Mater Sci Eng 260A:275\nSaito Y, Tsuji N, Utsunomiya H, Sakai T, Hong RG (1998) Scripta Mater 39:1221\nHughes DA, Hansen N (2001) Phys Rev Lett 87:135503\nFecht HJ, Hellstern E, Fu Z, Johnson WL (1990) Metall Trans 21A:2333\nUmemoto M, Todaka Y, Tsuchiya K (2003) Mater Trans 44:1488\nLu K, Lu J (1999) J Mater Sci Technol 15:193; Mater Sci Eng (2004) 375–377A:38\nZhang HW, Hei ZK, Liu G, Lu J, Lu K (2003) Acta Mater 51:1871\nTao NR, Wang ZB, Tong WP, Sui ML, Lu J, Lu K (2002) Acta Mater 50:4063\nWu X, Tao N, Hong Y, Xu B, Lu J, Lu K (2002) Acta Mater 50:2075\nZhu KY, Vassel A, Brisset F, Lu J, Lu K (2004) Acta Mater 52:4101\nScripta Mater. 49 (2003) 625–680 (Viewpoint Set No. 31. ‘Mechanical properties of fully dense nanocrystalline metals’, edited by H. Van Swygenhoven and J.R. Weertman)\nHuang X, Vorhauer A, Winther G, Hansen N, Pippan R, Zehetbauer M (2004) In: Zhu YT, Langdon TG, Valiev RZ, Semiatin SL, Shin DH, Lowe TC (eds) Ultrafine grained materials III. TMS (The Minerals, Metals & Materials Society), p 235\nHuang X, Winther G, Hansen N, Hebesberger T, Vorhauer A, Pippan R, Zehetbauer M (2003) Mater Sci Forum 426–432:2819\nWinther G, Hansen N, Hebesberger T, Huang X, Pippan R, Zehetbauer M (2001) In: Dinesen AR, Eldrup M, Juul Jensen D, Linderoth S, Pedersen TB, Pryds NH, Schrøder Pedersen A, Wert JA (eds) Proceedings of the 22nd Risø international symposium on materials science: science of metastable and nanocrystalline alloys-structure, properties and modeling, Risø National Laboratory, Roskilde, Denmark, p 435\nZhilyaev AP, Lee S, Nurislamova GV, Valiev RZ, Landon TG (2001) Scripta Mater 44:2753\nHughes DA, Dawson DB, Korellis JS, Weingarten LI (1995) Wear 181:458\nHansen N (2004) In: Gundlach C, Haldrup K, Hansen N, Huang X, Juul Jensen D, Leffers T, Li ZJ, Nielsen SF, Pantleon W, Wert JA, Winther G (eds) Proceedings of the 25th Risø international symposium on materials science: evolution of deformation microstructures in 3D. Risø National Laboratory, Roskilde, Denmark, p 13\nHuang X, Tsuji N, Hansen N, Minamino Y (2003) Mater Sci Eng 340A:265\nHughes DA, Hansen N (2004) ASM handbook 10th edn., vol 9: metallography and microstructures. ASM International, Metals Park, Ohio, p 192\nKuhlmann-Wilsdorf D, Hansen N (1991) Scripta Metall Mater 25:1557\nKuhlmann-Wilsdorf D (1989) Mater Sci Eng 113A:1\nKuhlmann-Wilsdorf D (1985) Phys Stat Sol 225:225\nLiu Q, Hansen N (1995) Scripta Metall Mater 32:1289\nHughes DA, Hansen N (2003) Phil Mag 83:3871\nBay B, Hansen N, Hughes DA, Kuhlmann-Wilsdorf D (1992) Acta Metall Mater 40:205\nHansen N (2001) Metall Mater Trans 32A:2917\nZhilyaev AP, Kim B-K, Nurislamova GV, Baró MD, Szpunar JA, Langdon TG (2002) Scripta Mater 46:575\nHoneycombe RWK (1984) The plastic deformation of metals. Edward Arnold Ltd\nLiao XZ, Zhou F, Lavernia EJ, He DW, Zhu YT (2003) Appl Phys Lett 83:5062\nRösner H, Markmann J, Weissmüller J (2004) Phil Mag Lett 84:321\nChen MW, Ma E, Hemker KJ, Sheng HW, Wang YM, Cheng XM (2003) Science 300:1275\nLiao XZ, Huang JY, Zhu YT, Zhou F, Lavernia EJ (2003) Philos Mag 83:3065\nAsaro RJ, Krysl P, Kad B (2003) Philos Mag Lett 83:733\nZhu YT, Liao XZ, Srinivasan SG, Zhao YH, Baskes MI, Zhou F, Lavernia EJ (2004) Appl Phys Lett 85:5049\nZhu YT, Liao XZ, Srinivasan SG, Lavernia EJ (2005) J Appl Phys 98:034319\nVan Swygenhoven H, Derlet PM, Frøseth AG (2004) Nature Mater 3:399\nYamakov V, Wolf D, Phillpot SR, Mukherjee AK, Gleiter H (2004) Nature Mater 3:43\nSchiøtz J, Di Tolla FD, Jacobsen KW (1998) Nature 391:561\nSchiøtz J, Jacobsen KW (2003) Science 301:1357\nHughes DA, Hansen N (2000) Acta Mater 48:2985\nAlberdi J (1984) Universidad de Navarra Facultad de Ciencias, San Sebastian, Grandes Deformaciones Plasticas en Frio en Policristales de Cobrey Aluminio (Torsion)\nHu H (1969) In: Grewen J, Wassermann G (eds) Textures in research and practice. Springer-Verlag, Berlin, p 200\nDinda GP, Rösner H, Wilde G (2005) Scripta Mater 52:577\nLiu Q, Huang X, Lloyd DJ, Hansen N (2002) Acta Mater 50:3789\nGodfrey A, Hughes DA (2002) Mater Character 48:89\nHughes DA, Chrzan DC, Liu Q, Hansen N (1998) Phys Rev Lett 81:4664\nGodfrey A, Hughes DA (2004) Scripta Mater 51:831\nHansen N (2004) Scripta Mater 51:801\nHansen N, Huang X, Ueji R, Tsuji N (2004) Mater Sci Eng 387–389A:191\nHall EO (1951) Proc Phys Soc London 64B:747\nPetch NJ (1953) J Iron Steel Inst 174:25\nThompson AAW (1975) Acta Metall 23:1337\nLi BL, Godfrey A, Meng QC, Liu Q, Hansen N (2004) Acta Mater 52:1069\nDalla Torre F, Spätig P, Schäublin R, Victoria M (2005) Acta Mater 53:2337\nWang YM, Wang K, Pan D, Lu K, Hemker KJ, Ma E (2003) Scripta Mater 48:1581\nChen XH, Lu J, Lu L, Lu K (2005) Scripta Mater 52:1039",{"EN":222},"The processing, structure and properties of deformed metals and alloys with a structural scale from the micrometer to the nanometer dimensions has been the subject of a recent viewpoint set [1]. The present paper will focus on deformed metals and alloys with a structural scale from 5 nm to 100 nm, concentrating on materials processed by high pressure torsion (HPT), surface mechanical attrition treatment (SMAT) and sliding. A detailed microstructural characterization has been followed by an analysis of the relationship between structural features and processing parameters. In this analysis, some general approaches have been applied for example scaling of the evolution of the boundary spacing. This analysis is the basis for a brief discussion of the relationship between the microstructural parameters and the strength.",{"EN":224},"Deformed metals and alloys with a structural scale from 5 nm to 100 nm",{"VOID":226},"10.1007\u002Fs10853-006-0974-y","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10853-006-0974-y",[232,248],{"id":233,"sortIndex":23,"researcher":22,"roles":234,"affiliations":236,"properties":245},"5324d0db-e6a5-43d4-808a-1b755274cdd3",[235],"AUTHOR",[237],{"id":22,"sortIndex":23,"affiliation":238,"properties":22},{"id":239,"createTime":240,"updateTime":240,"relativeEntities":241,"slug":22,"properties":242,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"4685173e-dc27-4115-b7ee-7c82731fe710","2024-02-10T16:04:18.949+00:00",[],{"title":243},{"VI":244},"Center for Fundamental Research: Metal Structures in Four Dimensions, Materials Research Department, Risø National Laborabory, Roskilde, Denmark",{"title":246},{"VI":247},"H. W. Zhang",{"id":249,"sortIndex":250,"researcher":22,"roles":251,"affiliations":252,"properties":258},"013e6c70-c870-4685-a995-d8286b157d6a",1,[235],[253],{"id":22,"sortIndex":23,"affiliation":254,"properties":22},{"id":239,"createTime":240,"updateTime":240,"relativeEntities":255,"slug":22,"properties":256,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":257},{"VI":244},{"title":259},{"VI":260},"N. Hansen","ARTICLE",{"url":230,"publisher":263,"properties":292},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":264,"slug":10,"properties":265,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":270,"manageAffiliations":271,"indexDatabases":272,"url":22,"thumbnailPath":22,"statistic":287,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":266,"eissn":267,"title":268,"url":269},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[273,280],{"id":113,"indexDatabase":274,"url":128,"indexYears":22,"academicFieldIds":279,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":275,"label":276,"description":277,"key":124,"publicationTags":278,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":281,"url":103,"indexYears":104,"academicFieldIds":286,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":282,"label":283,"description":284,"key":100,"publicationTags":285,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":288,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":289,"totalCitation":194,"totalCitationByYear":290,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":291,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":293,"pages":295},{"VOID":294},"42",{"VOID":296},"1682-1693","2007-01-09",2007,false,{"id":301,"createTime":302,"updateTime":303,"relativeEntities":304,"slug":305,"properties":306,"entityType":227,"verifyStatus":228,"verifyTime":303,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":315,"fullTextUrl":22,"authors":316,"publicationType":261,"publisherRelationship":359,"citationCount":22,"citationInfo":22,"publishDate":394,"publishYear":395,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"9b9ddd7c-32d6-455c-ad72-95f30119a1eb","2024-02-15T10:41:17.680+00:00","2025-02-13T23:59:54.099+00:00",[],"Electrical-transport-properties-of-amorphous-Se78-x-Te22Bi-x-films",{"references":307,"abstract":309,"title":311,"doi":313},{"VOID":308},"A. Elshafie and A. Abdel-All, Physica B 69-78 (1999) 269.\nJ. Rowlands and S. Kasap, Phys. Today 50 (1997) 24.\nJ. Osugi, T. Kojima, M. Sakata, M. Yamanashi and A. Nishida, J. Appl. Phys. 76 (1994) 2235.\nK. Watanabe, N. Sato and S. Miyaka, ibid. 54 (1983) 1256.\nS. Murata, H. Nakada, T. Abe, H. Tanaka and A. Watabe, Jpn. J. Appl. Phys. 32 (1993) 5284.\nL. D. Hicks and M. S. Dresselhaus, Phys. Rev. B 47 (1993) 12727.\nD. J. Singh and W. E. Pickett, ibid. 50 (1994) 11 235.\nB. C. Sales, D. Mandrus and R. K. Williams, Science 272 (1996) 1325.\nN. F. Mott, Phil. Mag. 19 (1969) 835.\nG. B. Abdullaev, S. I. Mekhtieva, D. S. Abdinov and G. M. Aliev, Phys. Status. Solidi. 11 (1965) 891.\nE. A. Davis and N. F. Mott, Phil. Mag. 22 (1970) 903.\nN. Nobukuni, M. Takashima, T. Ohno and M. Horie, J. Appl. Phys. 12 (1995) 78.\nT. Matsushita, A. Suzuki, M. Arimoto, M. Okuda and H. Naito, Jpn. J. Appl. Phys. 31 (1992) 3370.\nL. H. Chou and M. C. Kuo, J. Appl. Phys. 5 (1995) 77.\nV. B. Sapre and C. Mande, J. Phys. Chem. Solids 34 (1973) 1331.\nN. Tohge, T. Minami, Y. Yamimoto and M. Tanaka, J. Appl. Phys. 51 (1980) 1048.\nP. Nagels, M. Rotti and S. Vikrov, J. de Phys. 42 C4 (1981) 907.\nM. M. Malik, M. Zulfequar, Arvind Kumar and M. Hussain, J. Phys: Condens, Matter 4 (1992) 8331.\nN. Tohge, T. Minami and M. Tanaka, J. Non-Cryst. Solids 37 (1980) 23.\nT. Takahashi, ibid. 44 (1981) 239.\nM. Polcik, J. Drahekoupil, I. Drbohlav and L. Tichy, ibid. 192\u002F193 (1995) 380.\nA. K. Agnihotri, A. Kumar and A. N. Nigam, Phil. Mag. B 57 (1988) 319.\nIdem., J. Non-Cryst. Solids 93 (1987) 267.\nJ. Grenet, J. P. Larmagnac, P. Michon and C. Vautier, Thin Solid Films 76 (1981) 53.\nC. Vautier, J. M. Saiter and T. Derrey, J. Non-Cryst. Solids 103 (1988) 65.\nK. L. Bhatia, M. Singh and M. Kishore, Phil. Mag. B 73 (1996) 383.\nM. Abkowitz, Polymer. Eng. Sci. 24 (1984) 1149.\nN. F. Mott, Phil. Mag. 22 (1970) 7.\nR. Mishra, S. Geol, S. K. Tripathi, A. K. Agnihotry and A. Kumar, Physics B 167 (1990) 195.\nV. A. Twaddell, W. C. Lacourse and J. D. Ackenzie, J. Non-Crystal. Solids 8\u002F10 (1972) 831.\nN. F. Mott and E. A. Davis, “Electronic Processes in Non-Crystalline Materials” (Oxford University Press, Oxford, 1971).\nH. Fritzsche, “Amorphous and Liquid Semiconductors,” edited by J. Tauc (Plenum Press, New York, 1974) p. 254.\nG. N. Greaves, J. C. Knight and E. A. Davis, in Proc. Fifth Int. Conf. Amorphous and Liquid Semiconductors, edited by J. Stuke and W. Brenig (Taylor and Francis, London, 1974) p. 369.\nM. L. Knotek, M. Pollak, T. M. Donovan and H. Kutzman, Phys. Rev. Lett. 30 (1973) 853.\nJ. J. Hauser, ibid. 29 (1972) 476.\nJ. Scottmiller, M. Tabak, G. Lucovsky and A. Ward, J. Non-Cryst. Solids 4 (1970) 80.\nP. Agrwal, J. S. P. Raj and A. Kumar, Phys. Chem. Glasses 31 (1990) 227.\nG. Parthasarathy and E. S. R. Gopal, Bull. Mater. Sci 6 (1984) 231.\nN. Tohge, T. Minami and T. Masami, J. Non-Cryst. Solids. 38\u002F39 (1980) 238.\nR. M. Mehra, H. Kumar, S. Koul and P. Sikka, Materials Chemistry and Physics 481-494 (1984) 11.\nB. J. Lindberg, K. Hamin, G. Jonnson, U. Galius, A. Fahlman, C. Nording and K. Siegbhan, Phys. Scr. 1 (1970) 286.\nT. A. Carlson, Photoelectron and Auger Spectroscopy (Plenum, New York,) (1975) p. 165.\nA. V. Pendharkar and C. Mande, Physica 66 (1973) 204.\nR. T. Sanderson, “Inorganic Chemistry” (East-West Press PUT, New Delhi, 1971).",{"EN":310},"D.C. Conductivity measurements on the thin films of a-Se78−x\n Te22Bi\n                  x\n                 system (where x = 0, 0.5, 2 and 4) are reported in the temperature range 213–390 K and the density of states (DOS) near the Fermi level is calculated using dc conductivity data. It is found that the conduction in all the samples takes place in the tails of localized states. The conduction in the high temperature region 296–390 K is due to thermally assisted tunneling of electrons in the localized states at the conduction band edge. In the low temperature region 213–296 K conduction takes place through variable range hopping in the localized states near the Fermi level.",{"EN":312},"Electrical transport properties of amorphous Se78−x Te22Bi x films",{"VOID":314},"10.1023\u002FA:1021841708012","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FA:1021841708012",[317,334,346],{"id":318,"sortIndex":250,"researcher":22,"roles":319,"affiliations":320,"properties":331},"55a8c5b9-c204-4b6c-831a-9c44cb5335d8",[235],[321],{"id":22,"sortIndex":23,"affiliation":322,"properties":22},{"id":323,"createTime":324,"updateTime":325,"relativeEntities":326,"slug":327,"properties":328,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"233821d6-6d1e-4e69-828a-5dc25aa6f29b","2024-04-15T07:53:40.833+00:00","2024-10-09T21:58:11.343+00:00",[],"Department-of-Physics-Jamia-Millia-Islamia-New-Delhi-India",{"title":329},{"EN":330},"Department of Physics; Jamia Millia Islamia; New Delhi India",{"title":332},{"VI":333},"M. Zulfequar",{"id":335,"sortIndex":23,"researcher":22,"roles":336,"affiliations":337,"properties":343},"21167577-be55-4696-8900-12f30ddc8220",[235],[338],{"id":22,"sortIndex":23,"affiliation":339,"properties":22},{"id":323,"createTime":324,"updateTime":325,"relativeEntities":340,"slug":327,"properties":341,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":342},{"EN":330},{"title":344},{"VI":345},"M. A. Majeed Khan",{"id":347,"sortIndex":348,"researcher":22,"roles":349,"affiliations":350,"properties":356},"ccc3dc07-522c-4ae7-8362-7713505961be",2,[235],[351],{"id":22,"sortIndex":23,"affiliation":352,"properties":22},{"id":323,"createTime":324,"updateTime":325,"relativeEntities":353,"slug":327,"properties":354,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":355},{"EN":330},{"title":357},{"VI":358},"M. Husain",{"url":315,"publisher":360,"properties":389},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":361,"slug":10,"properties":362,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":367,"manageAffiliations":368,"indexDatabases":369,"url":22,"thumbnailPath":22,"statistic":384,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":363,"eissn":364,"title":365,"url":366},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[370,377],{"id":113,"indexDatabase":371,"url":128,"indexYears":22,"academicFieldIds":376,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":372,"label":373,"description":374,"key":124,"publicationTags":375,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":378,"url":103,"indexYears":104,"academicFieldIds":383,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":379,"label":380,"description":381,"key":100,"publicationTags":382,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":385,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":386,"totalCitation":194,"totalCitationByYear":387,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":388,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":390,"pages":392},{"VOID":391},"38",{"VOID":393},"549-554","2003-02-01",2003,{"id":397,"createTime":398,"updateTime":399,"relativeEntities":400,"slug":401,"properties":402,"entityType":227,"verifyStatus":228,"verifyTime":399,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":411,"fullTextUrl":22,"authors":412,"publicationType":261,"publisherRelationship":470,"citationCount":22,"citationInfo":22,"publishDate":505,"publishYear":506,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"3cebf342-b87b-4135-ad72-4cefc151d82e","2023-12-31T20:43:59.950+00:00","2025-02-13T23:59:54.117+00:00",[],"Synthesis-of-corrosion-inhibitive-poly-2-5-dimethylaniline-coatings-on-low-carbon-steel",{"references":403,"abstract":405,"title":407,"doi":409},{"VOID":404},"T. A. SKOTHEIM (Ed.), “Handbook of Conducting Polymers”, Vols. I and II (Marcel Dekker Inc., New York, 1986).\nH. S. NALWA, “Handbook of Organic Conductive Molecules and Polymers”, Vols. 1–4 (John Wiley and Sons Ltd., 1997).\nP. CHANDRASEKHAR, “Conducting Polymers: Fundamentals and Appplications” (Kluwer Academic Publishers, Dordrecht, Holland, 1999).\nD. E. TALLMAN, G. SPINKS, A. DOMINIS and G. WALLACE, J. Solid State Electrochem. 6 (2002) 73.\nIdem., ibid. 6 (2002) 85.\nM. M. POPOVIC and B. N. GRGUR, Synth. Met. 143(2) (2004) 191.\nJ. I. MARTINS, M. BAZZAOUI, T. C. REIS, E. A. BAZZAOUI and L. I. MARTINS, ibid. 129 (2002) 221.\nM. BAZZAOUI, L. I. MARTINS, E. A. BAZZAOUI and T. I. MARTINS, Electrochemica Acta. 47 (2002) 2953.\nN. A. OGURTSOV, A. A. PUD, P. KAMARCHIK and G. S. SHAPOVAL, Synth. Met. 143(1) (2004) 43.\nK. SHAH and J. IROH, ibid. 132 (2002) 35.\nS. AEIYACH, B. ZAID and P. C. LACAZE, Electrochim. Acta 44 (1999) 2889.\nP. A. KILMARTIN, L. TRIER and G. A. WRIGHT, Synth. Met. 131 (2002) 99.\nM. C. BERNARD, S. JOIRET, A. H. LE-GOFF and P. D. LONG, J. Electrochem. Soc. 148(8) (2001) B299.\nD. W. DEBERRY and A. VIEHBACK, in The Electrochemical Society Softbound proceedings Series, edited by E. Mccaffetry, C. R. Clayton and J. Oudar (Pennington, NJ, 1984), 308.\nJ. I. MARTINS, T. C. REIS, M. BAZZAOUI, E. A. BAZZAOUI and L. I. MARTINS, Corros. Sci. 46 (2004) 2361.\nP. HERRASTI and P. OCON, Appl. Surf. Sci. 172 (2001) 276.\nH. NGUYEN THI LE, B. GARCIA, C. DESLOUIS and Q. LE XUAN, Electrochimica Acta 46 (2001) 4259.\nL. H. C. MATTOSO and L. O. S. BILHOES, Synth. Met. 52 (1992) 171.\nL. H. C. MATTOSO, S. K. MANOHER, A. G. MACDIARMID and A. J. EPSTEIN, Polymer Sci. Part A : Polymer Chem. 33 (1995) 1227.\nV. SHINDE and P. P. PATIL, Mater. Sci. Technol. 19 (2004) 1604.\nV. SHINDE, S. CHAUDHARI, S. R. SAINKAR and P. P. PATIL, Mater. Chem. Phys. 82(3) (2003) 622.\nJ. PETITJEAN, S. AEIYACH, J. C. LACROIX and P. C. LACAZE, J. Electroanal. Chem. 478 (1999) 92.\nM. STERN and A. GEARY, ibid. 104 (1957) 56.\nElectrochemistry and Corrosion—Overview and Techniques, Application Note CORR -4, EG and G, Princeton Applied Research, U.S.A.\nD. E. STILLWELL and S. M. PARK, J. Electrochem. Soc. 135 (1988) 2254.\nJ. TANG, X. JING, B. WANG and F. WANG, Synth. Met. 24 (1988) 231.\nT. OHSAKA, Y. OHNUKI, N. OYAMA, G. KATAGIRI and K. KAMISAKO, J. Electroanal. Chem. 161 (1984) 399.\nW. Y. ZHENG, K. LEVON, T. TAKA, J. LAAKSO and J. E. OSTERHOLM, Polym. J. 28 (1996) 412.\nK. G. NEOH, E. T. KANG and K. L. TAN, J. Phys. Chem. 95 (1991) 10151.\nS. PATIL, Ph.D. Thesis, North Maharashtra University, Jalgaon, India (2000).",{"EN":406},"An attempt has been made towards the synthesis of strongly adherent poly(2,5-dimethylaniline) coatings on low carbon steel substrates, with an objective of examining the possibility of using this polymer for corrosion protection of steel in chloride environment. In this work, the poly(2,5-dimethylaniline) coatings were synthesized by electrochemical polymerization of 2,5-dimethylaniline using sodium salicylate as a supporting electrolyte. The characterization of these coatings was carried out by cyclic voltammetry, UV-visible absorption spectroscopy, Fourier transform infrared spectroscopy and scanning electron microscopy. The results of these characterizations indicate that the aqueous salicylate solution is a suitable medium for the electrochemical polymerization of 2,5-dimethylaniline to generate strongly adherent and smooth poly(2,5-dimethylaniline) coatings on low carbon steel substrates. The performance of poly(2,5-dimethylaniline) as protective coating against corrosion of low carbon steel in aqueous 3% NaCl was assessed by the open circuit potential and the potentiodynamic polarization measurements. The potentiodynamic polarization measurement reveals that the poly(2,5-dimethylaniline) coating increases the corrosion potential and reduces the corrosion rate of low carbon steel almost by a factor of 50. This study clearly ascertains that the poly(2,5-dimethylaniline) has outstanding capability to protect low carbon steel against corrosion in chloride environment.",{"EN":408},"Synthesis of corrosion inhibitive poly(2,5-dimethylaniline) coatings on low carbon steel",{"VOID":410},"10.1007\u002Fs10853-006-2375-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10853-006-2375-7",[413,428,443,458],{"id":414,"sortIndex":23,"researcher":22,"roles":415,"affiliations":416,"properties":425},"7cc9692c-c152-47bf-9705-6e8ff8f94a8f",[235],[417],{"id":22,"sortIndex":23,"affiliation":418,"properties":22},{"id":419,"createTime":420,"updateTime":420,"relativeEntities":421,"slug":22,"properties":422,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"0f6739e9-9118-49d8-82f0-ddab31457baa","2023-12-04T03:11:10.194+00:00",[],{"title":423},{"VI":424},"Department of Physics, North Maharashtra University, Jalgaon, India",{"title":426},{"VI":427},"Vandana Shinde",{"id":429,"sortIndex":348,"researcher":22,"roles":430,"affiliations":431,"properties":440},"231275f4-b6bd-4ee5-a803-694574c91c60",[235],[432],{"id":22,"sortIndex":23,"affiliation":433,"properties":22},{"id":434,"createTime":435,"updateTime":435,"relativeEntities":436,"slug":22,"properties":437,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"5cad3ada-415b-4754-87b2-d7167711f790","2024-01-22T01:02:23.055+00:00",[],{"title":438},{"VI":439},"Department of Electronic Science, University of Poona, Pune, India",{"title":441},{"VI":442},"S. A. Gangal",{"id":444,"sortIndex":250,"researcher":22,"roles":445,"affiliations":446,"properties":455},"a9d762f5-ce2f-4060-9567-554f5beff0b7",[235],[447],{"id":22,"sortIndex":23,"affiliation":448,"properties":22},{"id":449,"createTime":450,"updateTime":450,"relativeEntities":451,"slug":22,"properties":452,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"9edb3e54-e732-4f2c-9eb3-5d414c7967af","2024-01-24T08:55:15.979+00:00",[],{"title":453},{"VI":454},"Centre for Materials Characterization, National Chemical Laboratory, Pune, India",{"title":456},{"VI":457},"S. R. Sainkar",{"id":459,"sortIndex":200,"researcher":22,"roles":460,"affiliations":461,"properties":467},"3982f53c-832b-4383-b093-f6dbf24f4469",[235],[462],{"id":22,"sortIndex":23,"affiliation":463,"properties":22},{"id":419,"createTime":420,"updateTime":420,"relativeEntities":464,"slug":22,"properties":465,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":466},{"VI":424},{"title":468},{"VI":469},"P. P. Patil",{"url":411,"publisher":471,"properties":500},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":472,"slug":10,"properties":473,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":478,"manageAffiliations":479,"indexDatabases":480,"url":22,"thumbnailPath":22,"statistic":495,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":474,"eissn":475,"title":476,"url":477},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[481,488],{"id":113,"indexDatabase":482,"url":128,"indexYears":22,"academicFieldIds":487,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":483,"label":484,"description":485,"key":124,"publicationTags":486,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":489,"url":103,"indexYears":104,"academicFieldIds":494,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":490,"label":491,"description":492,"key":100,"publicationTags":493,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":496,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":497,"totalCitation":194,"totalCitationByYear":498,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":499,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":501,"pages":503},{"VOID":502},"41",{"VOID":504},"2851-2858","2006-04-05",2006,{"id":508,"createTime":509,"updateTime":510,"relativeEntities":511,"slug":512,"properties":513,"entityType":227,"verifyStatus":228,"verifyTime":510,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":522,"fullTextUrl":22,"authors":523,"publicationType":261,"publisherRelationship":626,"citationCount":22,"citationInfo":22,"publishDate":661,"publishYear":662,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"c88d93de-6b5a-46e7-b10f-fcd03f06fcfc","2024-02-17T12:29:54.036+00:00","2025-02-19T23:59:47.946+00:00",[],"Characterization-of-clay-composite-ballistic-witness-materials",{"references":514,"abstract":516,"title":518,"doi":520},{"VOID":515},"Prather RN, Swann CL, Hawkins CE (1977) Backface signatures of soft body armors and the associated trauma effects. Techniacl report, army armament research and development command, Aberdeen Proving Ground\nLehowicz LG, Gupta YM, Killinger DK, Markov VB, McGuffin-Cawley JD, Smith HI, Walker KL, Wiederhorn SM, Wilson AG (2009) Phase I report on review of the testing of body armor materials for use by the U.S. army: letter report, The National Academies Press\nLehowicz LG, Denn MM, Fahrenholtz WG, Ronald D Fricker J, McGuffin-Cawley JD, Smith HI, Walker KL, Wilson AG (2010) Testing of body armor materials for use by the U.S. army-phase II: letter report, The National Academies Press\nLehowicz LG, Bass CR, Budinger TF, Denn MM, Fahrenholtz WG, Ronald D Fricker J, Gupta YM, Killinger DK, Markov VB, McGuffin-Cawley JD, Prather RN, Wiederhorn SM, Wilson AG (2012) Testing of body armor materials: phase III. The National Academies Press\nHanlon E, Gillich P (2012) Origin of the 44-mm behind-armor blunt trauma standard. Mil Med 177(3):333–339\nCavallaro PV (2011) Soft body armor: An overview of materials, manufacturing, testing, and ballistic impact dynamics. Technical report, naval undersea warfare center division, Newport\nGiesel F (1878) Plastilina. Deut Chem Ges Ber 11:310\nMacosko C (1994) Rheology: principles, measurements, and applications., Advances in interfacial engineering series Wiley, Poughkeepsie\nDealy J, Larson R (2006) Structure and Rheology of molten polymers: from structure to flow behavior and back again. Hanser Publishers, Munich\nMorrison F (2001) Understanding rheology., A series of textbooks and monographs. Topics chemical engineering Oxford University Press, New York\nHyun K, Kim SH, Ahn KH, Lee SJ (2002) Large amplitude oscillatory shear as a way to classify the complex fluids. J Non-Newton Fluid Mech 107:51–65\nHyun K, Wilhelm M, Klein CO, Cho KS, Nam JG, Ahn KH, Lee SJ, Ewoldt RH, McKinley GH (2011) A review of nonlinear oscillatory shear tests: analysis and application of large amplitude oscillatory shear (LAOS). Prog Polym Sci 36:1697–1753\nRogers SA, Erwin BM, Vlassopoulos D, Cloitre M (2011) A sequence of physical processes determined and quantified in LAOS: application to a yield stress fluid. J Rheol 55(2):435–458\nRogers SA, Lettinga MP (2012) A sequence of physical processes determined and quantified in large-amplitude oscillatory shear (LAOS): application to theoretical nonlinear models. J Rheol 56(1):1–25\nRogers SA (2012) A sequence of physical processes determined and quantified in LAOS: an instantaneous local 2D\u002F3D approach. J Rheol (1978-present) 56(5):1129–1151\nWilhelm M, Maring D, Spiess HW (1998) Fourier-transform rheology. Rheol Acta 37(4):399–405\nWilhelm M, Reinheimer P, Ortseifer M (1999) High sensitivity fourier-transform rheology. Rheol Acta 38(4):349–356\nWilhelm M, Reinheimer P, Ortseifer M, Neidhfer T, Spiess HW (2000) The crossover between linear and non-linear mechanical behaviour in polymer solutions as detected by Fourier-transform rheology. Rheol Acta 39(3):241–246\nEwoldt RH, Hosoi AE, McKinley GH (2008) New measures for characterizing nonlinear viscoelasticity in large amplitude oscillatory shear. J Rheol 52(6):1427–1458\nCho KS, Hyun K, Ahn KH, Lee SJ (2005) A geometrical interpretation of large amplitude oscillatory shear response. J Rheol 49(3):747–758",{"EN":517},"Mechanical and thermal properties of Roma Plastilina Clay #1 (RP1) were studied through small-amplitude oscillatory shear (SAOS), large-amplitude oscillatory shear (LAOS), and differential scanning calorimetry (DSC), supplemented with thermogravimetric analysis, X-ray diffraction, and X-ray florescence. Rheological characterizations of RP1 through SAOS indicate that the clay composite softens as it is worked and slowly stiffens as it rests. Upon heating, the clay composite softens, prior work history is erased, and the composite undergoes a melting transition, although melted clay is significantly stiffer when returned to the usage temperature. Continuing mechanical characterizations into the LAOS or nonlinear region, RP1 transitions from a transient network to a viscous shear-thinning material as the temperature is increased. Using the MITlaos framework, RP1 exhibits intra-cycle strain stiffening and intra-cycle shear thinning at all temperatures.",{"EN":519},"Characterization of clay composite ballistic witness materials",{"VOID":521},"10.1007\u002Fs10853-015-9259-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10853-015-9259-7",[524,539,554,570,582,595,611],{"id":525,"sortIndex":250,"researcher":22,"roles":526,"affiliations":527,"properties":536},"ab99178f-27d3-433e-8f0b-f82b11498344",[235],[528],{"id":22,"sortIndex":23,"affiliation":529,"properties":22},{"id":530,"createTime":531,"updateTime":531,"relativeEntities":532,"slug":22,"properties":533,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"1ab41d29-55a2-4dc5-b589-af12f2681802","2024-02-17T12:29:54.060+00:00",[],{"title":534},{"VI":535},"Montgomery College, Gaithersburg, USA",{"title":537},{"VI":538},"Yoonae Heo",{"id":540,"sortIndex":200,"researcher":22,"roles":541,"affiliations":542,"properties":551},"da9d9ac5-b04b-4519-a497-f7ff5f63445a",[235],[543],{"id":22,"sortIndex":23,"affiliation":544,"properties":22},{"id":545,"createTime":546,"updateTime":546,"relativeEntities":547,"slug":22,"properties":548,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"316dd92a-7fea-4db6-97b9-f3507576ed70","2023-12-19T21:33:38.428+00:00",[],{"title":549},{"VI":550},"Chemical Sciences Division, National Institute of Standards and Technology, Gaithersburg, USA",{"title":552},{"VI":553},"John R. Sieber",{"id":555,"sortIndex":556,"researcher":22,"roles":557,"affiliations":558,"properties":567},"ffd8d919-a378-42ea-b438-c03a6683f26e",4,[235],[559],{"id":22,"sortIndex":23,"affiliation":560,"properties":22},{"id":561,"createTime":562,"updateTime":562,"relativeEntities":563,"slug":22,"properties":564,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"0fb50e2f-12d0-4605-a4c5-152fa8e61817","2023-12-06T07:29:07.258+00:00",[],{"title":565},{"VI":566},"Materials Science and Engineering Division, National Institute of Standards and Technology, Gaithersburg, USA",{"title":568},{"VI":569},"Chad R. Snyder",{"id":571,"sortIndex":23,"researcher":22,"roles":572,"affiliations":573,"properties":579},"070512eb-811a-4804-86a6-b517feee89ab",[235],[574],{"id":22,"sortIndex":23,"affiliation":575,"properties":22},{"id":561,"createTime":562,"updateTime":562,"relativeEntities":576,"slug":22,"properties":577,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":578},{"VI":566},{"title":580},{"VI":581},"Jonathan E. Seppala",{"id":583,"sortIndex":584,"researcher":22,"roles":585,"affiliations":586,"properties":592},"e40f04ed-651d-4bcf-92b4-3e2375dc3428",6,[235],[587],{"id":22,"sortIndex":23,"affiliation":588,"properties":22},{"id":561,"createTime":562,"updateTime":562,"relativeEntities":589,"slug":22,"properties":590,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":591},{"VI":566},{"title":593},{"VI":594},"Gale A. Holmes",{"id":596,"sortIndex":348,"researcher":22,"roles":597,"affiliations":598,"properties":608},"9111b359-62c5-49eb-b5b2-17744b692e9c",[235],[599],{"id":22,"sortIndex":23,"affiliation":600,"properties":22},{"id":601,"createTime":602,"updateTime":602,"relativeEntities":603,"slug":604,"properties":605,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"55cbc100-0f9d-4cf0-9f60-7438638c038a","2024-04-13T23:10:43.232+00:00",[],"Materials-and-Structural-Systems-Division-National-Institute-of-Standards-and-Technology-Gaithersburg-USA",{"title":606},{"EN":607},"Materials and Structural Systems Division, National Institute of Standards and Technology, Gaithersburg, USA",{"title":609},{"VI":610},"Paul E. Stutzman",{"id":612,"sortIndex":196,"researcher":22,"roles":613,"affiliations":614,"properties":623},"64bd551f-c732-4c2b-90d3-c8891ce219c1",[235],[615],{"id":22,"sortIndex":23,"affiliation":616,"properties":22},{"id":617,"createTime":618,"updateTime":618,"relativeEntities":619,"slug":22,"properties":620,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"b18e63c6-ef84-4878-81e5-2679bfca6765","2024-01-10T11:34:46.083+00:00",[],{"title":621},{"VI":622},"Materials Measurement Science Division, National Institute of Standards and Technology, Gaithersburg, USA",{"title":624},{"VI":625},"Kirk D. Rice",{"url":522,"publisher":627,"properties":656},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":628,"slug":10,"properties":629,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":634,"manageAffiliations":635,"indexDatabases":636,"url":22,"thumbnailPath":22,"statistic":651,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":630,"eissn":631,"title":632,"url":633},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[637,644],{"id":113,"indexDatabase":638,"url":128,"indexYears":22,"academicFieldIds":643,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":639,"label":640,"description":641,"key":124,"publicationTags":642,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":645,"url":103,"indexYears":104,"academicFieldIds":650,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":646,"label":647,"description":648,"key":100,"publicationTags":649,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":652,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":653,"totalCitation":194,"totalCitationByYear":654,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":655,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":657,"pages":659},{"VOID":658},"50",{"VOID":660},"7048-7057","2015-07-29",2015,{"id":664,"createTime":665,"updateTime":665,"relativeEntities":666,"slug":22,"properties":667,"entityType":227,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":676,"fullTextUrl":22,"authors":677,"publicationType":261,"publisherRelationship":753,"citationCount":22,"citationInfo":22,"publishDate":788,"publishYear":789,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"09495328-2039-47b1-bca1-0f663cc06963","2024-01-18T23:59:45.845+00:00",[],{"references":668,"abstract":670,"title":672,"doi":674},{"VOID":669},"Liu H, Yen S (2007) Characterization of electrolytic Co3O4 thin films as anodes for lithium-ion batteries. J Power Sour 166:478–484\nLi L, Seng K, Chen Z, Guo Z, Liu H (2013) Self-assembly of hierarchical star-like Co3O4 micro\u002Fnanostructures and their application in lithium ion batteries. Nanoscale 5:1922–1928\nDai J, Song M, Wang M, Li P, Zhang C, Shen Y, Xie A (2015) Freeze-drying growth of Co3O4\u002FN-doped reduced graphene oxide nanocomposite as excellent anode material for lithium-ion batteries. Ceram Int 42:2410–2415\nLiang K, He H, Ren Y, Wang H, Liao Y, Huang X (2019) Porous lithium titanate nanosheets as an advanced anode material for sodium ion batteries. J Mater Sci 55:4372–4381. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10853-019-04290-1\nLiu J, Lu Y, Wang R, Xu Z, Li X (2020) Simple and efficient combustion method for preparation of high-performance Co3O4 anode materials for lithium-ion batteries. JOM. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11837-020-04212-6\nHou C, Hou Y, Fan Y, Zhai Y, Wang Y, Sun Z, Fan R, Dang F, Wang J (2018) Oxygen vacancy derived local build-in electric field in mesoporous hollow Co3O4 microspheres promotes high-performance Li-ion batteries. J Mater Chem A 6:6967–6976\nBaji DS, Nair SV, Rai AK (2017) Highly porous disk-like shape of Co3O4 as an anode material for lithium ion batteries. J Solid State Electr 21:2869–2875\nHuang G, Xu S, Lu S, Li L, Sun H (2014) Micro-\u002Fnano-structured Co3O4 anode with enhanced rate capability for lithium-ion batteries. ACS Appl Mater Int 6:7236–7243\nCao W, Wang W, Shi H, Wang J, Cao M, Liang Y, Zhu M (2018) Hierarchical three-dimensional flower-like Co3O4 architectures with a mesocrystal structure as high capacity anode materials for long-lived lithium-ion batteries. Nano Res 11:1437–1446\nTranchemontagne DJ, Mendoza-Cortes JL, O’Keeffe M, Yaghi OM (2009) ChemInform abstract: secondary building units, nets and bonding in the chemistry of metal-organic frameworks. ChemInform. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fchin.200929228\nO’Keeffe M, Yaghi OM (2012) Deconstructing the crystal structures of metal-organic frameworks and related materials into their underlying nets. Chem Rev 112:675–702\nTian D, Zhou X, Zhang Y, Zhou Z, Bu X (2015) MOF-derived porous Co3O4 hollow tetrahedra with excellent performance as anode materials for lithium-ion batteries. Inorg Chem 54:8159–8161\nKong L, Xie C, Gu H, Wang C, Zhou X, Liu J, Zhou Z, Li Z, Zhu J, Bu X (2018) Thermal instability induced oriented 2D pores for enhanced sodium storage. Small 14:1800639\nShuang W, Huang H, Kong L, Zhong M, Li A, Wang D, Xu Y, Bu X (2019) Nitrogen-doped carbon shell-confined Ni3S2 composite nanosheets derived from Ni-MOF for high performance sodium-ion battery anodes. Nano Energy 62:154–163\nKong L, Zhong M, Shuan W, Xu Y, Bu X (2020) Electrochemically active sites inside crystalline porous materials for energy storage and conversion. Chem Soc Rev 49:2378–2407\nZhu J, Qu T, Su F, Wu Y, Kang Y, Chen K, Yao Y, Ma W, Yang B, Dai Y, Liang F, Xue D (2020) Highly dispersed Co nanoparticles decorated on a N-doped defective carbon nano-framework for a hybrid Na-air battery. Dalton T 49:1811–1821\nJian S, Yang W, Lin W, Hu J, Zhang L (2017) Formation of hollow Co3O4 nanocages with hierarchical shell structure as anode materials for lithium-ion batteries. J Porous Mat 24:1079–1088\nFeng Y, Yu X, Paik U (2016) Formation of Co3O4 microframes from MOFs with enhanced electrochemical performance for lithium storage and water oxidation. Chem Commun 52:6269–6272\nLiu S, Cao C, Yang F, Yu M, Yao S, Zheng T, He W, Zhao H, Hu T, Bu X (2016) High proton conduction in two CoII and MnII anionic MOFs derived from 1,3,5-benzenetricarboxylic acid. Cryst Growth Des 16:6776–6780\nYang T, Liu Y, Huang Z, Liu J, Bian P, Ling CD, Liu H, Wang G, Zheng R (2018) In situ growth of ZnO nanodots on carbon hierarchical hollow spheres as high-performance electrodes for lithium-ion batteries. J Alloy Compd 735:1079–1087\nBanerjee A, Singh U, Aravindan V, Srinivasan M, Ogale S (2013) Synthesis of CuO nanostructures from Cu-based metal organic framework (MOF-199) for application as anode for Li-ion batteries. Nano Energy 2:1158–1163\nZafeiratos S, Dintzer T, Teschner D, Blume R, Havecker M, Knopgericke A, Schlogl R (2010) Methanol oxidation over model cobalt catalysts: influence of the cobalt oxidation state on the reactivity. J Catal 269:309–317\nYang H, Su Y, Shen C, Yang T, Gao H (2004) Synthesis and magnetic properties of ε-cobalt nanoparticles. Surf Interface Anal 36:155–160\nGuo H, Mao R, Tian D, Wang W, Zhao D, Yang X, Wang S (2013) Morphology-controlled synthesis of SnO2\u002FC hollow core-shell nanoparticle aggregates with improved lithium storage. J Mater Chem A 1:3652–3658\nChen J, Xia X, Tu J, Xiong Q, Yu Y, Wang X, Gu CD (2012) Co3O4-C core-shell nanowire array as an advanced anode material for lithium ion batteries. J Mater Chem 22:15056–15061\nReddy MV, Beichen Z, Nicholette LJ, Zhang K, Chowdaril BVR (2011) Molten salt synthesis and its electrochemical characterization of Co3O4 for lithium batteries. Electrochem Solid State Lett 14:A79–A82\nLarcher D, Sudant G, Leriche J, Chabre Y, Tarascon J (2002) The electrochemical reduction of Co3O4 in a lithium cell. J Electrochem Soc 149:A234–A241\nKim G, Nam I, Kim ND, Park J, Park S, Yi J (2012) A synthesis of graphene\u002FCo3O4 thin films for lithium ion battery anodes by coelectrodeposition. Electrochem Commun 22:93–96\nXiao M, Meng Y, Duan C, Zhu F, Zhang Y (2019) Ionic liquid derived Co3O4\u002FNitrogen doped carbon composite as anode of lithium ion batteries with enhanced rate performance and cycle stability. J Mater Sci-Mater El 30:6148–6156\nHuang G, Zhang F, Du X, Qin Y, Yin D, Wang L (2015) Metal organic frameworks route to in situ insertion of multiwalled carbon nanotubes in Co3O4 polyhedra as anode materials for lithium-ion batteries. ACS Nano 9:1592–1599\nYin D, Huang G, Sun Q, Li Q, Wang X, Yuan D, Wang C, Wang L (2016) RGO\u002FCo3O4 composites prepared using GO-MOFs as precursor for advanced lithium-ion batteries and supercapacitors electrodes. Electrochim Acta 215:410–419\nWu Q, Shao Q, Li Q, Duan Q, Li Y, Wang H (2018) Dual carbon-confined SnO2 hollow nanospheres enabling high performance for the reversible storage of alkali metal ions. ACS Appl Mater Int 10:15642–15651\nWang H, Wu Q, Wang Y, Wang X, Wu L, Song S, Zhang H (2019) Molecular engineering of monodisperse SnO2 nanocrystals anchored on doped graphene with high-performance lithium\u002Fsodium-storage properties in half\u002Ffull cells. Adv Energy Mater 9:1802993\nWu Q, Liu Y, Wang H, Hou J, Li Y, Duan Q (2020) Graphene encapsulated metallic state Ce2Sn2O7 as a novel anode material for superior lithium-ion batteries and capacitors. J Mater Chem A 8:5517–5524\nWang J, Zhang Q, Li X, Zhang B, Mai L, Zhang K (2015) Smart construction of three-dimensional hierarchical tubular transition metal oxide core\u002Fshell heterostructures with high-capacity and long-cycle-life lithium storage. Nano Energy 12:437–446\nLiu J, Lu Y, Wang R, Xu Z, Li X (2020) The effect of calcination temperature on combustion preparation of ZnFe2O4 as anode for lithium batteries. Int J Electrochem Sc 15:1571–1580\nYan C, Wu C, Zhuang Q, Tian L, Cui Y, Zhao X, Ju Z, Sun X (2016) Investigation of the lithiation mechanism of Fe3O4-based composite anode: the effect of the carbon matrix. ChemistrySelect 1:3979–3991\nLi F, Zhuang Q, Qiu X, Sun Z (2013) Investigation of lithiation mechanism of LiCr3O8 as potential anode materials for lithium-ion batteries. Int J Electrochem Sci 8:3551–3563\nBao W, Zhuang Q, Xu S, Cui Y, Shi Y, Qiang Y (2013) Investigation of electronic and ionic transport properties in α-MoO3 cathode material by electrochemical impedance spectroscopy. Ionics 19:1005–1013\nWu C, Zhang H, Wu Y, Zhuang Q, Tian L, Zhang X (2014) Synthesis and characterization of Fe@Fe2O3 core-shell nanoparticles\u002Fgraphene anode material for lithium-ion batteries. Electrochim Acta 134:18–27\nZhao X, Zhuang Q, Qiu X, Xu S, Shi Y, Cui Y (2011) Electrochemical performance of Cr2O3\u002FTiO2 composite material for lithium ion batteries. Acta Phys-Chim Sin 27:1666–1672\nZhao X, Zhuang Q, Xu S, Xu Y, Shi Y, Zhang X (2015) Investigation of Cr2O3 as anode materials for lithium-ion batteries by electrochemical impedance spectroscopy. J Electrochem Soc 162:A1156–A1162\nQu X, Liu Y, Li B, Xing B, Cao Y (2020) Nanostructured T-Nb2O5-based composite with reduced graphene oxide for improved performance lithium-ion battery anode. J Mater Sci 55:13062–13074. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10853-020-04910-1\nYang X, Zhang R, Zhao J, Wei Z, Wang D, Bie X, Gao Y, Wang J, Du F, Chen G (2017) Amorphous tin-based composite oxide: a high-rate and ultralong-life sodium-ion-storage material. Adv Energy Mater 8:1701827\nYuan T, Jiang Y, Sun W, Xiang B, Li Y, Yan M, Xu B, Dou S (2016) Ever-increasing pseudocapacitance in RGO-MnO-RGO sandwich nanostructures for ultrahigh-rate lithium storage. Adv Funct Mater 26:2198–2206\nChen C, Wen Y, Hu X, Ji X, Yan M, Mai L, Hu P, Shan B, Huang Y (2015) Na+ intercalation pseudocapacitance in graphene-coupled titanium oxide enabling ultra-fast sodium storage and long-term cycling. Nat Commun 6:6929\nLi G, Yang Z, Jiang Y, Jin C, Huang W, Ding X, Huang Y (2016) Towards polyvalent ion batteries: a zinc-ion battery based on Nasicon structured Na3V2(PO4)3. Nano Energy 25:211–217\nChao D, Zhu C, Yang P, Xia X, Liu J, Wang J, Fan X, Savilov S, Lin J, Fan H, Shen Z (2016) Array of nanosheets render ultrafast and high-capacity Na-ion storage by tunable pseudocapacitance. Nat Commun 7:12122\nXia S, Yu S, Yao L, Li F, Li X, Cheng F, Shen X, Sun C, Guo H, Liu J (2019) Robust hexagonal nut-shaped titanium(IV) MOF with porous structure for ultra-high performance lithium storage. Electrochim Acta 296:746–754",{"EN":671},"Metal–organic frameworks (MOFs) are ideal self-sacrificial precursors for building materials with porous structures and high electrochemical performance because materials prepared with metal MOFs as precursors have the advantages of high porosity, diverse structures, and large surface area. In this work, porous nanostructured Co3O4 particles were prepared by using cobalt-based MOFs as a precursor, which exhibited superior electrochemical properties as anode materials for lithium-ion batteries. The reversible capacity reaches 924.1 mAh g−1 at 200 mA g−1 after 100 cycles, and the reversible capacity after 300 cycles is still as high as 838.6 mAh g−1 at 1000 mA g−1. Such superior electrochemical properties are mainly owe to the porous structure of Co3O4 particles. The porous structure is beneficial for the electrolyte to penetrate into the electrode material and shortens the transmission path of electrons and lithium ions, further improving the diffusion rate and the cycling performance. In addition, the porous structure can alleviate large volume changes of the material during lithiation and delithiation to improve the cycling stability.",{"EN":673},"Metal–organic framework derived porous nanostructured Co3O4 as high-performance anode materials for lithium-ion batteries",{"VOID":675},"10.1007\u002Fs10853-020-05355-2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10853-020-05355-2",[678,693,705,717,729,741],{"id":679,"sortIndex":196,"researcher":22,"roles":680,"affiliations":681,"properties":690},"189938b7-6aca-48fe-9755-3c5f2e8271cb",[235],[682],{"id":22,"sortIndex":23,"affiliation":683,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":686,"slug":22,"properties":687,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"41d709d5-e6ca-4d3b-9746-dddfb449628c","2023-12-13T15:43:14.149+00:00",[],{"title":688},{"VI":689},"Faculty of Materials, Metallurgy and Chemistry, Jiangxi University of Science and Technology, Ganzhou, People’s Republic of China",{"title":691},{"VI":692},"Rui-Xiang Wang",{"id":694,"sortIndex":23,"researcher":22,"roles":695,"affiliations":696,"properties":702},"84ded29f-4099-44a5-be20-ee756c48a3b1",[235],[697],{"id":22,"sortIndex":23,"affiliation":698,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":699,"slug":22,"properties":700,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":701},{"VI":689},{"title":703},{"VI":704},"Yan-Hua Lu",{"id":706,"sortIndex":556,"researcher":22,"roles":707,"affiliations":708,"properties":714},"99e2613c-d5d4-4e0d-8216-dc3bfc04a4bc",[235],[709],{"id":22,"sortIndex":23,"affiliation":710,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":711,"slug":22,"properties":712,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":713},{"VI":689},{"title":715},{"VI":716},"Sui-Jun Liu",{"id":718,"sortIndex":348,"researcher":22,"roles":719,"affiliations":720,"properties":726},"7ed2532d-06d1-4e31-a961-c71a7dac1bd1",[235],[721],{"id":22,"sortIndex":23,"affiliation":722,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":723,"slug":22,"properties":724,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":725},{"VI":689},{"title":727},{"VI":728},"Zhi-Feng Xu",{"id":730,"sortIndex":200,"researcher":22,"roles":731,"affiliations":732,"properties":738},"507a337b-b1a7-4bef-9d4b-6bffb8ab3054",[235],[733],{"id":22,"sortIndex":23,"affiliation":734,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":735,"slug":22,"properties":736,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":737},{"VI":689},{"title":739},{"VI":740},"Jia-Ming Liu",{"id":742,"sortIndex":250,"researcher":22,"roles":743,"affiliations":744,"properties":750},"27332cb8-5d0f-4cff-884e-fb83ff2cd419",[235],[745],{"id":22,"sortIndex":23,"affiliation":746,"properties":22},{"id":684,"createTime":685,"updateTime":685,"relativeEntities":747,"slug":22,"properties":748,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":749},{"VI":689},{"title":751},{"VI":752},"Jin-Hui Li",{"url":676,"publisher":754,"properties":783},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":755,"slug":10,"properties":756,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":761,"manageAffiliations":762,"indexDatabases":763,"url":22,"thumbnailPath":22,"statistic":778,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":757,"eissn":758,"title":759,"url":760},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[764,771],{"id":113,"indexDatabase":765,"url":128,"indexYears":22,"academicFieldIds":770,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":766,"label":767,"description":768,"key":124,"publicationTags":769,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":772,"url":103,"indexYears":104,"academicFieldIds":777,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":773,"label":774,"description":775,"key":100,"publicationTags":776,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":779,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":780,"totalCitation":194,"totalCitationByYear":781,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":782,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":784,"pages":786},{"VOID":785},"56",{"VOID":787},"2451-2463","2020-09-29",2020,{"id":791,"createTime":792,"updateTime":793,"relativeEntities":794,"slug":795,"properties":796,"entityType":227,"verifyStatus":228,"verifyTime":793,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":805,"fullTextUrl":22,"authors":806,"publicationType":261,"publisherRelationship":885,"citationCount":22,"citationInfo":22,"publishDate":920,"publishYear":921,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"a91adf09-e310-44e9-88d5-1ea0e6c57f63","2023-12-25T05:44:45.922+00:00","2024-12-14T23:59:43.474+00:00",[],"Fabrication-and-characterization-of-anisotropic-dielectrics-for-low-loss-microwave-applications",{"references":797,"abstract":799,"title":801,"doi":803},{"VOID":798},"Figotin A, Vitebsky I (2001) Phys Rev E 63:066609\nFigotin A, Vitebsky I (2003) Phys Rev B 67:165210\nMumcu G, Sertel K, Volakis JL, Figotin A, Vitebsky I (2004) IEEE Ante Propagat Soc Symp 2:1395\nTobar ME, Krupka J, Ivanov EN, Woode RA (1998) J Appl Phys 83(3):1604\nCollin RE (1958) IRE Trans Microw Theo Tech 6(2):206\nGong X et al (2005) IEEE Trans Micro Theo Tech 53(11):3638\nAlford NM, Penn SJ (1996) J Appl Phys 80(10):5895\nTempleton A et al (2000) J Am Ceram Soc 83(1):95\nKajfez D, Guillon P (1986) In: Dielectric resonators. Artech House, Inc., Dedham, p 53\nKrupka J, Derzakowski K, Riddle B, Baker-Jarvis J (1998) Meas Sci Technol 9(10):1751\nGurevich VL, Tagantsev AK (1991) Adv Phys 40(6):719\nAlford NM et al (2001) J Eur Ceram Soc 21:2605\nMcneal MP, Jang SJ, Newnham RE (1998) J Appl Phys 83(6):3288",{"EN":800},"New magneto-photonic assembly designs for high-gain antennas require dielectrics with a significant anisotropy and low loss at GHz frequencies. This paper describes an approach to fabricate such dielectrics from ceramic laminates. These laminates consist of two ceramics with largely different permittivities and low dielectric losses. Alternating layers of commercially available α-Al2O3 and Nd-doped BaTiO3 were laminated using organic adhesives. Equivalent permittivity tensors and loss tangents were characterized using a resonant cavity-based approach, which was coupled with a finite-element method full-wave solver. Measured permittivity values were in good agreement with mean field predictions; a minimum loss tangent 1.1 × 10−3 was obtained when using one-component epoxy (Loctite®-3982) adhesive. Application of two-component epoxy (M-bond 610) adhesive results in a slightly higher loss but better mechanical properties and machinability. These laminates were used to demonstrate high gain in a prototype antenna with 6 misaligned anisotropic dielectric layers.",{"EN":802},"Fabrication and characterization of anisotropic dielectrics for low-loss microwave applications",{"VOID":804},"10.1007\u002Fs10853-007-2378-z","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10853-007-2378-z",[807,822,834,849,861,873],{"id":808,"sortIndex":348,"researcher":22,"roles":809,"affiliations":810,"properties":819},"5d1a1bd6-198d-488b-8206-66d9db642a8f",[235],[811],{"id":22,"sortIndex":23,"affiliation":812,"properties":22},{"id":813,"createTime":814,"updateTime":814,"relativeEntities":815,"slug":22,"properties":816,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"4dcb4603-8fca-42fb-9f47-68715608e695","2023-12-25T05:44:46.038+00:00",[],{"title":817},{"VI":818},"ElectroScience Laboratory, Department of Electrical and Computer Engineering, The Ohio State University, Columbus, USA",{"title":820},{"VI":821},"Salih Yarga",{"id":823,"sortIndex":200,"researcher":22,"roles":824,"affiliations":825,"properties":831},"98be5ca0-7bc7-461f-8d96-e3392b05ca30",[235],[826],{"id":22,"sortIndex":23,"affiliation":827,"properties":22},{"id":813,"createTime":814,"updateTime":814,"relativeEntities":828,"slug":22,"properties":829,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":830},{"VI":818},{"title":832},{"VI":833},"Kubilay Sertel",{"id":835,"sortIndex":196,"researcher":22,"roles":836,"affiliations":837,"properties":846},"c61886e1-34f7-477f-a437-815598fddaee",[235],[838],{"id":22,"sortIndex":23,"affiliation":839,"properties":22},{"id":840,"createTime":841,"updateTime":841,"relativeEntities":842,"slug":22,"properties":843,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"c04ace4c-d965-45cd-b8ae-b399e43750e4","2023-12-25T05:44:46.144+00:00",[],{"title":844},{"VI":845},"Group Inorganic Materials Science, Department of Materials Science and Engineering, The Ohio State University, Columbus, USA",{"title":847},{"VI":848},"Henk Verweij",{"id":850,"sortIndex":250,"researcher":22,"roles":851,"affiliations":852,"properties":858},"bc130bfd-3ce5-4292-9ee5-8ffd90916c6f",[235],[853],{"id":22,"sortIndex":23,"affiliation":854,"properties":22},{"id":813,"createTime":814,"updateTime":814,"relativeEntities":855,"slug":22,"properties":856,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":857},{"VI":818},{"title":859},{"VI":860},"Gokhan Mumcu",{"id":862,"sortIndex":556,"researcher":22,"roles":863,"affiliations":864,"properties":870},"213a555b-986c-4b0a-90c8-179902cccf52",[235],[865],{"id":22,"sortIndex":23,"affiliation":866,"properties":22},{"id":813,"createTime":814,"updateTime":814,"relativeEntities":867,"slug":22,"properties":868,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":869},{"VI":818},{"title":871},{"VI":872},"John L. Volakis",{"id":874,"sortIndex":23,"researcher":22,"roles":875,"affiliations":876,"properties":882},"e74d8211-dc8d-4320-924c-3d37d3b72fbf",[235],[877],{"id":22,"sortIndex":23,"affiliation":878,"properties":22},{"id":840,"createTime":841,"updateTime":841,"relativeEntities":879,"slug":22,"properties":880,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":881},{"VI":845},{"title":883},{"VI":884},"Lanlin Zhang",{"url":805,"publisher":886,"properties":915},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":887,"slug":10,"properties":888,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":893,"manageAffiliations":894,"indexDatabases":895,"url":22,"thumbnailPath":22,"statistic":910,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":889,"eissn":890,"title":891,"url":892},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[896,903],{"id":113,"indexDatabase":897,"url":128,"indexYears":22,"academicFieldIds":902,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":898,"label":899,"description":900,"key":124,"publicationTags":901,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":904,"url":103,"indexYears":104,"academicFieldIds":909,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":905,"label":906,"description":907,"key":100,"publicationTags":908,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":911,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":912,"totalCitation":194,"totalCitationByYear":913,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":914,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":916,"pages":918},{"VOID":917},"43",{"VOID":919},"1505-1509","2008-03-01",2008,{"id":923,"createTime":924,"updateTime":925,"relativeEntities":926,"slug":927,"properties":928,"entityType":227,"verifyStatus":228,"verifyTime":925,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":937,"fullTextUrl":22,"authors":938,"publicationType":261,"publisherRelationship":1007,"citationCount":22,"citationInfo":22,"publishDate":1041,"publishYear":662,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"4c6e69da-2622-40f9-b4a2-0c390c70d957","2023-12-14T06:48:31.254+00:00","2025-02-25T23:59:40.588+00:00",[],"Shear-thickening-of-suspensions-of-porous-silica-nanoparticles",{"references":929,"abstract":931,"title":933,"doi":935},{"VOID":930},"Brown E, Jaeger HM (2014) Shear thickening in concentrated suspensions: phenomenology, mechanisms and relations to jamming. Rep Prog Phys 77(4):046602\nJiang W, Gong X, Xuan S et al (2013) Stress pulse attenuation in shear thickening fluid. Appl Phys Lett 102(10):101901\nLee YS, Wagner NJ (2003) Dynamic properties of shear thickening colloidal suspensions. Rheol Acta 42(3):199–208\nBarnes HA (1989) Shear-thickening (“dilatancy”) in suspensions of nonaggregating solid particles dispersed in newtonian liquids. J Rheol 33(2):329–366\nZhang XZ, Li WH, Gong XL (2008) The rheology of shear thickening fluid (STF) and the dynamic performance of an STF-filled damper. Smart Mater Struct 17(3):035027\nLee YS, Wetzel ED, Wagner NJ (2003) The ballistic impact characteristics of Kevlar® woven fabrics impregnated with a colloidal shear thickening fluid. J Mater Sci 38(13):2825–2833. doi:10.1023\u002FA:1024424200221\nMaranzano BJ, Wagner NJ (2002) Flow-small angle neutron scattering measurements of colloidal dispersion microstructure evolution through the shear thickening transition. J Chem Phys 117(22):10291–10302\nBossis G, Brady JF (1989) The rheology of Brownian suspensions. J Chem Phys 91(3):1866–1874\nBender JW, Wagner NJ (1995) Optical measurement of the contributions of colloidal forces to the rheology of concentrated suspensions. J Colloid Interface Sci 172(1):171–184\nLaun HM, Bung R, Hess S et al (1992) Rheological and small angle neutron scattering investigation of shear-induced particle structures of concentrated polymer dispersions submitted to plane Poiseuille and Couette flowa). J Rheol 36(4):743–787\nO’Brie VT, Mackay ME (2000) Stress components and shear thickening of concentrated hard sphere suspensions. Langmuir 16(21):7931–7938\nCheng X, McCoy JH, Israelachvili JN et al (2011) Imaging the microscopic structure of shear thinning and thickening colloidal suspensions. Science 333(6047):1276–1279\nJiang W, Sun Y, Xu Y et al (2010) Shear-thickening behavior of polymethylmethacrylate particles suspensions in glycerine–water mixtures. Rheol Acta 49(11–12):1157–1163\nShenoy SS, Wagner NJ (2005) Influence of medium viscosity and adsorbed polymer on the reversible shear thickening transition in concentrated colloidal dispersions. Rheol Acta 44(4):360–371\nKamibayashi M, Ogura H, Otsubo Y (2008) Shear-thickening flow of nanoparticle suspensions flocculated by polymer bridging. J Colloid Interface Sci 321(2):294–301\nXu Y, Gong X, Peng C et al (2010) Shear thickening fluids based on additives with different concentrations and molecular chain lengths. Chin J Chem Phys 23(3):342–346\nFranks GV, Zhou Z, Duin NJ et al (2000) Effect of interparticle forces on shear thickening of oxide suspensions. J Rheol 44(4):759–779\nYe F, Zhu W, Jiang W et al (2013) Influence of surfactants on shear-thickening behavior in concentrated polymer dispersions. J Nanopart Res 15(12):1–9\nWagner NJ, Brady JF (2009) Shear thickening in colloidal dispersions. Phys Today 62(10):27–32\nChu B, Brady AT, Mannhalter BD et al (2014) Effect of silica particle surface chemistry on the shear thickening behaviour of concentrated colloidal suspensions. J Phys D-Appl Phys 47(33):335302\nYu K, Cao H, Qian K et al (2012) Shear-thickening behavior of modified silica nanoparticles in polyethylene glycol. J Nanopart Res 14(3):1–9\nRaghavan SR, Khan SA (1997) Shear-thickening response of fumed silica suspensions under steady and oscillatory shear. J Colloid Interface Sci 185(1):57–67\nChang L, Friedrich K, Schlarb AK et al (2011) Shear-thickening behaviour of concentrated polymer dispersions under steady and oscillatory shear. J Mater Sci 46(2):339–346. doi:10.1007\u002Fs10853-010-4817-5\nClarke B (1967) Rheology of coarse settling suspensions. Trans Inst Chem Eng 45(6):251–256\nEgres RG, Wagner NJ (2005) The rheology and microstructure of acicular precipitated calcium carbonate colloidal suspensions through the shear thickening transition. J Rheol 49(3):719–746\nBrown E, Zhang H, Forman NA et al (2011) Shear thickening and jamming in densely packed suspensions of different particle shapes. Phys Rev E 84(3):031408\nMaranzano BJ, Wagner NJ (2001) The effects of particle size on reversible shear thickening of concentrated colloidal dispersions. J Chem Phys 114(23):10514–10527\nYang HG, Li CZ, Gu HC et al (2001) Rheological behavior of titanium dioxide suspensions. J Colloid Interface Sci 236(1):96–103\nChen H, He J, Tang H et al (2008) Porous silica nanocapsules and nanospheres: dynamic self-assembly synthesis and application in controlled release. Chem Mat 20(18):5894–5900\nHoffmann F, Cornelius M, Morell J et al (2006) Silica-based mesoporous organic–inorganic hybrid materials. Angew Chem Int Edit 45(20):3216–3251\nTao Y, Kanoh H, Abrams L et al (2006) Mesopore-modified zeolites: preparation, characterization, and applications. Chem Rev 106(3):896–910\nSing KSW (1985) Reporting physisorption data for gas\u002Fsolid systems with special reference to the determination of surface area and porosity (Recommendations 1984). Pure Appl Chem 57(4):603–619\nRussel WB, Saville DA, Schowalter WR (1989) Colloidal dispersions. Cambridge University Press, New York\nRaghavan SR, Walls HJ, Khan SA (2000) Rheology of silica dispersions in organic liquids: new evidence for solvation forces dictated by hydrogen bonding. Langmuir 16(21):7920–7930",{"EN":932},"In this work, shear thickening (ST) performance of a novel suspension of porous silica nanoparticles was systematically studied. The porous silica nanoparticles which were synthesized by using CTAB as a pore-forming agent were dispersed into ethylene glycol to form shear thickening fluid (STF). Both the steady and oscillatory shear rheological properties of the STF were characterized. The STF showed distinct ST effects when the concentration of the porous nanoparticles was only 42.5 wt%. This value was much lower than the previously reported STF prepared by non-porous particles. The viscosity increased from 0.80 to 14.3 Pa s by increasing the shear rate from 0.1 to 49.4 s−1, while a noticeable overall downward trend with a high initial viscosity was found in the prepared suspension of non-porous silica. The results indicated that porous nature of the silica nanoparticles could remarkably influence the ST effect. A possible enhancing mechanism was proposed and it was found that the difference of macroscopic rheology behavior was mainly according to interfacial interaction between the porous silica nanoparticles. This work provided valuable information for understanding the relationship between the porous characteristics and ST behavior.",{"EN":934},"Shear thickening of suspensions of porous silica nanoparticles",{"VOID":936},"10.1007\u002Fs10853-015-9151-5","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10853-015-9151-5",[939,956,968,983,995],{"id":940,"sortIndex":23,"researcher":22,"roles":941,"affiliations":942,"properties":953},"ffe52ce2-ebf5-412e-a9b0-fc0584a7bd7a",[235],[943],{"id":22,"sortIndex":23,"affiliation":944,"properties":22},{"id":945,"createTime":946,"updateTime":947,"relativeEntities":948,"slug":949,"properties":950,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"096cf19c-7a09-4709-9860-7a6f5e0d9b32","2023-12-14T06:48:42.093+00:00","2025-06-11T22:22:18.699+00:00",[],"CAS-Key-Laboratory-of-Mechanical-Behavior-and-Design-of-Materials-Department-of-Modern-Mechanics-University-of-Science-and-Technology-of-China-USTC-Hefei-People-s-Republic-of-China",{"title":951},{"VI":952},"CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China (USTC), Hefei, People’s Republic of China",{"title":954},{"VI":955},"Qianyun He",{"id":957,"sortIndex":348,"researcher":22,"roles":958,"affiliations":959,"properties":965},"a585cc8a-76d5-49f0-ae6d-e44fc811cbe1",[235],[960],{"id":22,"sortIndex":23,"affiliation":961,"properties":22},{"id":945,"createTime":946,"updateTime":947,"relativeEntities":962,"slug":949,"properties":963,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":964},{"VI":952},{"title":966},{"VI":967},"Shouhu Xuan",{"id":969,"sortIndex":200,"researcher":22,"roles":970,"affiliations":971,"properties":980},"1edf6afd-a32f-460f-a626-b7adfe2481c9",[235],[972],{"id":22,"sortIndex":23,"affiliation":973,"properties":22},{"id":974,"createTime":975,"updateTime":975,"relativeEntities":976,"slug":22,"properties":977,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"8668be8b-8377-489a-a8cf-cb9d3faa93eb","2023-12-20T14:21:44.610+00:00",[],{"title":978},{"VI":979},"Department of Chemistry, USTC, Hefei, People’s Republic of China",{"title":981},{"VI":982},"Wanquan Jiang",{"id":984,"sortIndex":556,"researcher":22,"roles":985,"affiliations":986,"properties":992},"8bd0f0fa-ff15-4300-a3f4-c717757610e7",[235],[987],{"id":22,"sortIndex":23,"affiliation":988,"properties":22},{"id":945,"createTime":946,"updateTime":947,"relativeEntities":989,"slug":949,"properties":990,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":991},{"VI":952},{"title":993},{"VI":994},"Qian Chen",{"id":996,"sortIndex":250,"researcher":22,"roles":997,"affiliations":998,"properties":1004},"bc762ba0-af5f-453e-85d5-651a1fa087c9",[235],[999],{"id":22,"sortIndex":23,"affiliation":1000,"properties":22},{"id":945,"createTime":946,"updateTime":947,"relativeEntities":1001,"slug":949,"properties":1002,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1003},{"VI":952},{"title":1005},{"VI":1006},"Xinglong Gong",{"url":937,"publisher":1008,"properties":1037},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1009,"slug":10,"properties":1010,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1015,"manageAffiliations":1016,"indexDatabases":1017,"url":22,"thumbnailPath":22,"statistic":1032,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":1011,"eissn":1012,"title":1013,"url":1014},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[1018,1025],{"id":113,"indexDatabase":1019,"url":128,"indexYears":22,"academicFieldIds":1024,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":1020,"label":1021,"description":1022,"key":124,"publicationTags":1023,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":1026,"url":103,"indexYears":104,"academicFieldIds":1031,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1027,"label":1028,"description":1029,"key":100,"publicationTags":1030,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":1033,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":1034,"totalCitation":194,"totalCitationByYear":1035,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":1036,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":1038,"pages":1039},{"VOID":658},{"VOID":1040},"6041-6049","2015-06-17",{"id":1043,"createTime":1044,"updateTime":1044,"relativeEntities":1045,"slug":22,"properties":1046,"entityType":227,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1055,"fullTextUrl":22,"authors":1056,"publicationType":261,"publisherRelationship":1096,"citationCount":22,"citationInfo":22,"publishDate":1131,"publishYear":1132,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"9c4586c3-5671-4a63-bef8-298b66338a11","2024-01-18T23:59:35.515+00:00",[],{"references":1047,"abstract":1049,"title":1051,"doi":1053},{"VOID":1048},"B. Aurivillius, Arkiv for Kemi 1 (1949) 463.\nIdem., ibid. 2 (1950) 519.\nE. C. Subbarao, J. Amer. Ceram. Soc. 45 (1962) 166.\nK. Amanuma, T. Hase and Y. Miyasaka, Appl. Phys. Lett. 66 (1995) 221.\nC. A. Paz Araujo, J. D. Cuchiaro, M. C. Scott and L. D. Mcmillan, Nature 374 (1995) 627.\nP. C. Joshi, S. O. Ryu, X. Zhang and S. B. Desu, Appl. Phys. Lett. 70 (1997) 1080.\nC. H. Lu and J. T. Lee, Ceram. Inter. 24 (1998) 285.\nC. H. Lu and Y. C. Chen, J. Eur. Ceram. Soc. 19 (1999) 2909.\nC. H. Lu and C. Y. Wen, J. Appl. Phys. 86 (1999) 6335.\nC. H. Lu and Y. C. Chen, Integr. Ferro. 31 (2000) 129.\nM. A. Zurbuchen, G. Asayama and D. G. Schlom, Phys. Rev. Lett. 88 (2002) 10760.\nC. H. Lu and C. H. Wu, J. Eur. Ceram. Soc. 22 (2002) 707.\nS. S. Park, C. H. Yang, S. G. Yong, J. H. Ahn and H. G. Kim, J. Electronchem. Soc. 144 (1997) 2855.\nY. Zhu, S. B. Desu, T. Li and S. Ramanathan, J. Mater. Res. 12 (1997) 783.\nY. C. Chen and C. H. Lu, Integr. Ferro. 31 (2000) 87.\nC. H. Lu and B. K. Fang, J. Mater. Res. 12 (1997) 2104.\nS. B. Desu and D. P. Vijay, Mater. Sci. Eng. B 32 (1995) 83.\nC. H. Lu and C. Y. Wen, J. Eur. Ceram. Soc. 20 (2000) 739.\nT. Sato, K. Sugahara, T. Kijima and H. Ishiwara, Integr. Ferroelectr. 39 (2001) 1119.\nD. Bhattacharya, R. K. Singh and P. H. Holloway, J. Appl. Phys. 70 (1991) 5433.\nM. Decamps, D. Remiens, L. Chabal, B. Jaber and B. Thierry, Appl. Phys. Lett. 66 (1995) 685.\nF. K. Lotgering, J. Inorg. Nucl. Chem. 9 (1959) 113.\nS. H. Lin, S. L. Swaetz, W. A. Schulze and J. V. Biggers, J. Amer. Ceram. Soc. 66 (1983) 881.\nH. Watanabe, T. Kimura and T. Yamaguchi, ibid. 74 (1991) 139.",{"EN":1050},"The solid solutions of Ba-doped SrBi2Ta2O9 layered perovskite ceramic powders have been successfully prepared via a two-step process using BiTaO4 as a precursor. The lattice constants of the solid solutions monotonically increase with increasing barium-ion content. The sinterability of (Sr1−xBax)Bi2Ta2O9 powders is significantly improved by increasing the barium-ion content. When the specimens with high barium-ion contents are sintered at 1100°C, they thermally decompose to form rod-like grains and the matrix expands, leading to a lower density. The addition of barium ions to SrBi2Ta2O9 also results in significant variation in the morphology of the sintered specimens and the occurrence of c-axis preferred orientation which is ascribed to the anisotropic growth of plate-like grains. The precise control of the barium-ion content as well as the sintering conditions is critical for obtaining densified barium-ion doped SrBi2Ta2O9 ceramics with a pure, layered perovskite structure.",{"EN":1052},"Preparation, sintering, and microstructures of strontium barium bismuth tantalate layered perovskite ceramics",{"VOID":1054},"10.1023\u002FB:JMSC.0000025835.22825.5c","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FB:JMSC.0000025835.22825.5c",[1057,1072,1084],{"id":1058,"sortIndex":250,"researcher":22,"roles":1059,"affiliations":1060,"properties":1069},"c13e7a06-277c-41a0-9f86-b78a40b97a71",[235],[1061],{"id":22,"sortIndex":23,"affiliation":1062,"properties":22},{"id":1063,"createTime":1064,"updateTime":1064,"relativeEntities":1065,"slug":22,"properties":1066,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"4fa302f7-c1cc-409c-9064-ad5d598b5aee","2024-01-18T23:59:35.543+00:00",[],{"title":1067},{"VI":1068},"Electronic and Electro-Optical Ceramics Laboratory, Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan, Republic of China",{"title":1070},{"VI":1071},"Jia-Hau Bai",{"id":1073,"sortIndex":348,"researcher":22,"roles":1074,"affiliations":1075,"properties":1081},"1efa6f06-7e23-4c3a-a559-7dab138bc505",[235],[1076],{"id":22,"sortIndex":23,"affiliation":1077,"properties":22},{"id":1063,"createTime":1064,"updateTime":1064,"relativeEntities":1078,"slug":22,"properties":1079,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1080},{"VI":1068},{"title":1082},{"VI":1083},"Hung Chen",{"id":1085,"sortIndex":23,"researcher":22,"roles":1086,"affiliations":1087,"properties":1093},"de3fa320-2d5d-4c27-8f0a-6ddd7b2abdf7",[235],[1088],{"id":22,"sortIndex":23,"affiliation":1089,"properties":22},{"id":1063,"createTime":1064,"updateTime":1064,"relativeEntities":1090,"slug":22,"properties":1091,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1092},{"VI":1068},{"title":1094},{"VI":1095},"Chung-Hsin Lu",{"url":1055,"publisher":1097,"properties":1126},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1098,"slug":10,"properties":1099,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1104,"manageAffiliations":1105,"indexDatabases":1106,"url":22,"thumbnailPath":22,"statistic":1121,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":1100,"eissn":1101,"title":1102,"url":1103},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[1107,1114],{"id":113,"indexDatabase":1108,"url":128,"indexYears":22,"academicFieldIds":1113,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":1109,"label":1110,"description":1111,"key":124,"publicationTags":1112,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":1115,"url":103,"indexYears":104,"academicFieldIds":1120,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1116,"label":1117,"description":1118,"key":100,"publicationTags":1119,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":1122,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":1123,"totalCitation":194,"totalCitationByYear":1124,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":1125,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":1127,"pages":1129},{"VOID":1128},"39",{"VOID":1130},"3079-3083","2004-05-01",2004,{"id":1134,"createTime":1135,"updateTime":1136,"relativeEntities":1137,"slug":1138,"properties":1139,"entityType":227,"verifyStatus":228,"verifyTime":1136,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1148,"fullTextUrl":22,"authors":1149,"publicationType":261,"publisherRelationship":1189,"citationCount":22,"citationInfo":22,"publishDate":1224,"publishYear":1225,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"c50ad16d-64a5-4790-950a-24bd0f7dbdb7","2023-12-06T07:21:39.956+00:00","2025-01-03T23:59:26.284+00:00",[],"Sintering-and-properties-of-highly-donor-doped-barium-titanate-ceramics",{"references":1140,"abstract":1142,"title":1144,"doi":1146},{"VOID":1141},"N. G. Eror and D. M. Smyth, in “The Chemistry of Extended Defects in Non-Metallic Solids,” edited by L. Eyring and M. O Keef (Nord-Holland, Amsterdam, 1970), p. 62.\nJ. Daniels and R. Wernick, Philips. Res. Rep. 31 (1976) 544.\nM. Drofenik, J. Amer. Ceram. Soc. 70(5) (1987) 311.\nI. Zajc and M. Drofenik, J. Mater. Res. 13(3) (1998) 660.\nA. B. Alles, V. R. Amarakoon and V. L. Burdick, J. Amer. Ceram. Soc. 72(1) (1989) 148.\nA. M. J. H. Seuter, Philips Res. Rep. Suppl. 3 (1974) 1.\nB. C. Lacourse and V. R. W. Amarakoon, J. Amer. Ceram. Soc. 78(12) (1995) 3352.\nG. H. Jonker, Mater. Res. Bull. 2 (1967) 401.\nH. Ueoka and M. Yodogawa, IEEE Trans. Manuf. Techn. 3(2) (1974) 77.\nM. Drofenik, J. Amer. Ceram. Soc. 73(8) (1990) 1587.\nR. Bussem and M. Kahn, ibid. 54(9) (1971) 458.\nD. Hennings and G. Rosenstein, ibid. 67(4) (1984) 249.\nY. Park and H. G. Kim, ibid. 80(1) (1997) 106.\nC. A. Kleint, U. Stuopel and A. Rost, Phys. Stat. Sol. (A) 115 (1989) 165.\nC. V. Lewis and C. R. Catlow, J. Phys. Chem. Solids 47(1) (1986) 89.\nG. H. Jonker and E. E. Havinga, Mater. Res. Bull. 17 (1982) 345.\nD. Makovec, Z. Samard Žija, U. Delalut and D. Kolar, J. Amer. Ceram. Soc. 78(8) (1995) 2193.\nG. H. Jonker, Solid-State Electronics 7 (1964) 895.\nB. Hujbrechts, K. Ishizaki and M. TAKATE, J. Amer. Ceram. Soc. 75(3) (1992) 722.",{"EN":1143},"The electrical properties of donor (La3+) doped BaTiO3 samples with a donor concentration in the range from 0.3 to 1.5 mol.% of La were studied. Samples were sintered at a low partial pressure of oxygen in order to facilitate anomalous grain growth and donor incorporation. In order to optimise the PTCR anomaly, the samples were annealed in air at 1100°C. Results show that with the use of a specific sintering profile PTCR ceramics containing an amount of donor dopant >0.3 mol.%, can be prepared. Heavily doped samples which do not exhibit anomalous grain growth show a core shell structure.",{"EN":1145},"Sintering and properties of highly donor-doped barium titanate ceramics",{"VOID":1147},"10.1023\u002FA:1004794223988","http:\u002F\u002Flink.springer.com\u002F10.1023\u002FA:1004794223988",[1150,1165,1177],{"id":1151,"sortIndex":23,"researcher":22,"roles":1152,"affiliations":1153,"properties":1162},"cea8d17d-a616-4519-9da3-0376b9749af7",[235],[1154],{"id":22,"sortIndex":23,"affiliation":1155,"properties":22},{"id":1156,"createTime":1157,"updateTime":1157,"relativeEntities":1158,"slug":22,"properties":1159,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"dfd25ad3-0ccb-43e5-ad8f-9132487ccaa9","2023-12-06T07:21:39.974+00:00",[],{"title":1160},{"VI":1161},"Ceramics Department, “Jožef Stefan” Institute, Ljubljana, Slovenia",{"title":1163},{"VI":1164},"S. Urek",{"id":1166,"sortIndex":250,"researcher":22,"roles":1167,"affiliations":1168,"properties":1174},"0bcf702d-8509-4dfe-80cf-ed00e592e745",[235],[1169],{"id":22,"sortIndex":23,"affiliation":1170,"properties":22},{"id":1156,"createTime":1157,"updateTime":1157,"relativeEntities":1171,"slug":22,"properties":1172,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1173},{"VI":1161},{"title":1175},{"VI":1176},"M. Drofenik",{"id":1178,"sortIndex":348,"researcher":22,"roles":1179,"affiliations":1180,"properties":1186},"8367c947-cbcb-4db4-81cc-56b1b887faf5",[235],[1181],{"id":22,"sortIndex":23,"affiliation":1182,"properties":22},{"id":1156,"createTime":1157,"updateTime":1157,"relativeEntities":1183,"slug":22,"properties":1184,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1185},{"VI":1161},{"title":1187},{"VI":1188},"D. Makovec",{"url":1148,"publisher":1190,"properties":1219},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1191,"slug":10,"properties":1192,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1197,"manageAffiliations":1198,"indexDatabases":1199,"url":22,"thumbnailPath":22,"statistic":1214,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":1193,"eissn":1194,"title":1195,"url":1196},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[1200,1207],{"id":113,"indexDatabase":1201,"url":128,"indexYears":22,"academicFieldIds":1206,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":1202,"label":1203,"description":1204,"key":124,"publicationTags":1205,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":1208,"url":103,"indexYears":104,"academicFieldIds":1213,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1209,"label":1210,"description":1211,"key":100,"publicationTags":1212,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":1215,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":1216,"totalCitation":194,"totalCitationByYear":1217,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":1218,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":1220,"pages":1222},{"VOID":1221},"35",{"VOID":1223},"895-901","2000-02-01",2000,{"id":1227,"createTime":1228,"updateTime":1229,"relativeEntities":1230,"slug":1231,"properties":1232,"entityType":227,"verifyStatus":228,"verifyTime":1229,"verifyNote":229,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1241,"fullTextUrl":22,"authors":1242,"publicationType":261,"publisherRelationship":1272,"citationCount":22,"citationInfo":22,"publishDate":1307,"publishYear":1308,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":299},"1d69da63-ac4b-4865-97e2-69d89096ac02","2024-01-12T06:13:58.484+00:00","2025-01-08T23:59:20.669+00:00",[],"Observation-and-compositional-studies-of-the-metallic-conducting-filaments-in-the-low-resistance-state-ON-state-of-SiO-V2O5-thin-films-used-as-memory-elements",{"references":1233,"abstract":1235,"title":1237,"doi":1239},{"VOID":1234},"H. Fritzsche, “Electronic and Structural Properties of Amorphous Semiconductors”, Proceedings of the Thirteenth Session of the Scottish Universities Summer School in Physics, edited by P. G. le Comber and J. Mort (1972) p. 557.\nJ. F. Gibbons and W. E. Beadle, Solid-State Electron. 7 (1964) 785.\nF. Argall, Electron. Lett. 2 (1966) 282.\nP. F. Bongers and U. Enz, Phillips Res. Rept. 21 (1966) 387.\nK. Van Steensel, F. Van De Burg and C. Kooy, ibid. 22 (1967) 170.\nH. Futaki, Japan J. Appl. Phys. 4 (1965) 28.\nR. G. Cope and A. W. Penn, Brit. J. Appl. Phys. (J. Phys. D.) 1 (1968) 161.\nS. R. Ovshinsky, Phys. Rev. Lett. 21 (1968) 1450.\nF. Argall, Solid-State Electron. 11 (1968) 535.\nT. W. Hickmott and W. R. Hiatt, ibid. 13 (1970) 1033.\nP. O. Sliva, G. Dir, and C. Griffiths, J. Non-crystalline Solids 2 (1970) 316.\nK. C. Park and S. Basavaiah, ibid. 2 (1970) 284.\nP. Tronc, Thin Solid Films 5 (1970) R29.\nH. J. Stocker, Appl. Phys. Lett. 15 (1969) 55.\nR. R. Sutherland, K. O. Legg and R. A. Collins, Thin Solid Films 6 (1970) R39.\nM. Regan and C. F. Drake, Mat. Res. Bull. 6 (1971) 487.\nS. Manhart, J. Phys. D: Appl. Phys. 6 (1973) 82.\nIdem, J. Non-crystalline solids 11 (1973) 293.\nD. V. Morgan and M. J. Howes, Thin Solid Films 20 (1974) S7.\nIdem, Phys. Status Solidi (a) 21 (1974) 191.\nA. E. Rakhshani and C. A. Hogarth, Int. J. Electron. 44 (1978) 593.\nG. R. Moridi and C. A. Hogarth, ibid. 44 (1978) 297.\nM. I. Khan, C. A. Hogarth and M. N. Khan, ibid. 46 (1979) 215.\nY. Dimitriev, E. Gattef and A. Eneva, ibid., 50 (1981) 385.\nF. A. S. Al-Ramadhan and C. A. Hogarth, J. Mater. Sci.\nA. E. Rakhshani, C. A. Hogarth and A. A. Abidi, J. Non-crystalline Solids 20 (1976) 25.",{"EN":1236},"Memory elements of SiO\u002FV2O5 co-evaporated thin films with copper or silver electrodes were studied in the scanning electron microscope. Electron probe microanalysis revealed the existence of metallic filaments in the dielectric material when it was in the ON-state and the resistance was typically in the range 2 to 60 Ω at room temperature. When the sample resistance was in the range 10 to 100 kΩ at room temperature and the sample was in the OFF-state, no structural changes in the sample were observed. The properties in the ON-state are consistent with the diffusion of metal from the electrodes during the foming process to form conducting filamentary paths.",{"EN":1238},"Observation and compositional studies of the metallic conducting filaments in the low-resistance state (ON-state) of SiO\u002FV2O5 thin films used as memory elements",{"VOID":1240},"10.1007\u002FBF00550264","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF00550264",[1243,1260],{"id":1244,"sortIndex":23,"researcher":22,"roles":1245,"affiliations":1246,"properties":1257},"7f6eca96-743b-4285-ab05-26c6bbe067d9",[235],[1247],{"id":22,"sortIndex":23,"affiliation":1248,"properties":22},{"id":1249,"createTime":1250,"updateTime":1251,"relativeEntities":1252,"slug":1253,"properties":1254,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"06f17106-64cb-4fde-adb3-9a7f9c713163","2024-04-08T22:34:28.368+00:00","2025-06-11T19:59:53.665+00:00",[],"Department-of-Physics-Brunel-University-Uxbridge-UK",{"title":1255},{"VI":1256},"Department of Physics, Brunel University, Uxbridge, UK",{"title":1258},{"VI":1259},"F. A. S. Al-Ramadhan",{"id":1261,"sortIndex":250,"researcher":22,"roles":1262,"affiliations":1263,"properties":1269},"919f7f60-a091-4ad9-8c1d-6273f202e958",[235],[1264],{"id":22,"sortIndex":23,"affiliation":1265,"properties":22},{"id":1249,"createTime":1250,"updateTime":1251,"relativeEntities":1266,"slug":1253,"properties":1267,"entityType":75,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1268},{"VI":1256},{"title":1270},{"VI":1271},"C. A. Hogarth",{"url":1241,"publisher":1273,"properties":1302},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1274,"slug":10,"properties":1275,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1280,"manageAffiliations":1281,"indexDatabases":1282,"url":22,"thumbnailPath":22,"statistic":1297,"gsStatistic":22,"type":207,"analyzePriority":22},[],{"issn":1276,"eissn":1277,"title":1278,"url":1279},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[1283,1290],{"id":113,"indexDatabase":1284,"url":128,"indexYears":22,"academicFieldIds":1289,"indexDatabaseRanking":22},{"id":115,"createTime":116,"updateTime":117,"relativeEntities":1285,"label":1286,"description":1287,"key":124,"publicationTags":1288,"standard":22},[],{"EN":120,"VI":120},{"VI":122,"EN":123},[126,127],[130],{"id":90,"indexDatabase":1291,"url":103,"indexYears":104,"academicFieldIds":1296,"indexDatabaseRanking":111},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1292,"label":1293,"description":1294,"key":100,"publicationTags":1295,"standard":22},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108,109,110],{"impactFactor":23,"impactFactorByYear":1298,"i10Index":135,"i10IndexLast5Year":136,"totalPublication":137,"totalPublicationByYear":1299,"totalCitation":194,"totalCitationByYear":1300,"totalCitationPerPublication":201,"totalCitationPerPublicationByYear":1301,"hindexLast5Year":206,"hindex":206},{"2011":23,"2012":23,"2015":23,"2016":23,"2021":133,"2022":134,"2023":23},{"1966":135,"1967":139,"1968":140,"1969":141,"1970":142,"1971":143,"1972":144,"1973":145,"1974":146,"1975":145,"1976":147,"1977":148,"1978":149,"1979":150,"1980":151,"1981":152,"1982":153,"1983":154,"1984":155,"1985":156,"1986":157,"1987":158,"1988":159,"1989":158,"1990":160,"1991":161,"1992":162,"1993":163,"1994":164,"1995":165,"1996":166,"1997":167,"1998":168,"1999":169,"2000":170,"2001":171,"2002":172,"2003":173,"2004":174,"2005":175,"2006":176,"2007":177,"2008":171,"2009":178,"2010":179,"2011":180,"2012":181,"2013":182,"2014":183,"2015":184,"2016":185,"2017":186,"2018":187,"2019":188,"2020":189,"2021":190,"2022":191,"2023":192,"2024":193},{"1992":196,"2010":197,"2014":198,"2020":199,"2022":200},{"1992":203,"2010":203,"2014":204,"2020":205,"2022":23},{"volume":1303,"pages":1305},{"VOID":1304},"19",{"VOID":1306},"1939-1946","1984-06-01",1984]