[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_ba0a2fbd-1df3-460e-819e-75312f7dde31":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:ba0a2fbd-1df3-460e-819e-75312f7dde31,\"}":95},{"code":4,"data":5,"meta":20},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":22,"manageAffiliations":23,"indexDatabases":24,"url":20,"thumbnailPath":20,"statistic":40,"gsStatistic":20,"type":20,"analyzePriority":20},"ba0a2fbd-1df3-460e-819e-75312f7dde31","2024-04-16T04:29:09.600+00:00","2025-11-21T09:54:05.802+00:00",[],"Pleiades-Publishing-Ltd",{"issn":12,"title":14,"eissn":16},{"VOID":13},"1995-0780",{"EN":15},"Pleiades Publishing Ltd",{"VOID":17},"1995-0799","PUBLISHER","PENDING",null,0,[],[],[25],{"id":26,"indexDatabase":27,"url":37,"indexYears":38,"academicFieldIds":20,"indexDatabaseRanking":39},"f84e7fe1-2501-4bee-8e9e-e34ef472d89d",{"id":28,"createTime":20,"updateTime":20,"relativeEntities":29,"label":30,"description":32,"key":34,"publicationTags":35,"standard":20},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":31,"VI":31},"Scopus - Elsevier",{"EN":31,"VI":33},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[36],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F19700186876","2009-2020","SCOPUS__Q3",{"impactFactor":21,"impactFactorByYear":41,"i10Index":53,"i10IndexLast5Year":52,"totalPublication":54,"totalPublicationByYear":55,"totalCitation":66,"totalCitationByYear":67,"totalCitationPerPublication":81,"totalCitationPerPublicationByYear":82,"hindexLast5Year":94,"hindex":94},{"2012":42,"2013":43,"2014":44,"2015":45,"2016":46,"2017":47,"2018":48,"2019":49,"2020":50,"2021":51,"2022":52},0.57,0.47,0.45,0.88,0.76,0.58,0.7,0.74,0.72,1.08,2,36,147,{"2008":56,"2009":57,"2010":58,"2011":56,"2012":59,"2013":60,"2014":61,"2015":56,"2016":62,"2017":57,"2018":63,"2019":64,"2020":65},9,8,14,10,21,12,15,19,6,7,1126,{"2008":68,"2009":69,"2010":70,"2011":71,"2012":72,"2013":73,"2014":74,"2015":75,"2016":76,"2017":77,"2018":78,"2019":79,"2020":80},98,94,230,65,90,199,72,37,60,43,66,22,50,7.66,{"2008":83,"2009":84,"2010":85,"2011":86,"2012":56,"2013":87,"2014":64,"2015":88,"2016":89,"2017":90,"2018":91,"2019":92,"2020":93},10.89,11.75,16.43,7.22,9.48,4.11,4,5.38,3.47,3.67,7.14,16,{"meta":96,"data":98},{"total":97},"814",[99,246,310,417,626,718,901,1062,1326,1475],{"id":100,"createTime":101,"updateTime":102,"relativeEntities":103,"slug":104,"properties":105,"entityType":116,"verifyStatus":117,"verifyTime":118,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":120,"fullTextUrl":20,"authors":121,"publicationType":212,"publisherRelationship":213,"citationCount":21,"citationInfo":239,"publishDate":242,"publishYear":240,"citationAnalyzeStatus":19,"lastCitationAnalyze":243,"indexDatabases":244,"openAccess":20,"references":20,"isForceReanalyzing":245},"cdbaf503-4ced-41dd-80e9-ee3fed426237","2023-12-29T14:15:50.484+00:00","2026-07-27T06:53:57.687+00:00",[],"Heat-conductivity-of-a-nanoliquid-based-on-water-and-chemically-modified-single-walled-carbon-nanotubes",{"abstract":106,"title":108,"gsPaper":110,"references":112,"doi":114},{"EN":107},"In this paper we study the heat conductivity of a nanoliquid based on single-walled carbon nanotubes (SWNTs) and water. To achieve stability of the nanoliquid, we use chemically modified (namely, oxidized SWNTs) with a purity of about 95%. The heat conductivity measurements are carried out by the nonstationary hot-wire method. The experiments are conducted in the range of the mass fraction of carbon nanotubes of 0–0.4%. For the maximal nanotube concentration, an increase of heat conductivity by 17% is discovered in comparison with pure liquid. It is found that approximately a month after SWNT modification a nanoliquid synthesized from the same material started losing its anomalously high heat-conducting properties. Research using transmission electronic microscopy (TEM) and Raman scattering (RS) spectroscopy has shown that, in time, a change in material morphology takes place, and this is manifested in the degradation of the modified SWNTs.",{"EN":109},"Heat conductivity of a nanoliquid based on water and chemically modified single-walled carbon nanotubes",{"VOID":111},"[\"2989471104652743909\"]",{"VOID":113},"S. U. S. Choi, “Enhancing Thermal Conductivity of Fluids with Nanoparticles,” in Developments and Applications of Non-Newtonian Flows, Ed. by D. A. Siginer and H. P. Wang (ASME, New York, 1995), pp. 99–105.\nJ. C. Maxwell, A Treatise on Electricity and Magnetism, 2nd ed. (Clarendon, Oxford, 1881).\nJ. A. Eastman, S. U. S. Choi, S. Li, and L. J. Thompson, “Enhanced Thermal Conductivity through the Development of Nanofluids,” in Proc. 2nd Symp. on Nanophase and Nanocomposite Materials (Materials Res. Soc. USA, 1997), Vol. 457, pp. 3–11.\nJ. A. Eastman, S. U. S. Choi, S. Li, W. Yu, and L. J. Thompson, “Anomalously Increased Effective Thermal Conductivities of Ethylene Glycolbased Nanofluids Containing Copper Nanoparticles,” Appl. Phys. Lett. 78, 718–720 (2001).\nS. Lee, S. U. S. Choi, S. Li, and J. A. Eastman, “Measuring Thermal Conductivity of Fluids Containing Oxide Nanoparticles,” J. Heat Transfer 121, 280–289 (1999).\nX. Wang, X. Xu, and S. U. S. Choi, “Thermal Conductivity of Nanoparticle-Fluid Mixture,” J. Thermophys. Heat Transfer 13, 474–480 (1999).\nY. Xuan and Q. Li, “Heat Transfer Enhancement of Nanofluids,” Int. J. Heat Fluid Flow 21, 58–64 (2000).\nS. K. Das, N. Putra, P. Thiesen, and W. Roetzel, “Temperature Dependence of Thermal Conductivity Enhancement for Nanofluids,” J. Heat Transfer 125, 567–574 (2003).\nS. M. S. Murshed, K. C. Leong, and C. Yang, “Enhanced Thermal Conductivity of TiO2-Water Based Nanofluids,” Int. J. Therm. Sci. 44, 367–373 (2005).\nT. Hong, H. Yang, and C. J. Choi, “Study of the Enhanced Thermal Conductivity of Fe Nanofluids,” J. Appl. Phys. 97, 064311-1–064311-4 (2005).\nC. H. Li and G. P. Peterson, “Experimental Investigation of Temperature and Volume Fraction Variations on the Effective Thermal Conductivity of Nanoparticle Suspensions (Nanofluids),” J. Appl. Phys. 99, 084314-1–084314-8 (2006).\nX. Q. Wang and A. S. Mujumbar, “Heat Transfer Characteristics of Nanofluids: a Review,” Int. J. Therm. Sci. 46, 1–19 (2007).\nJ. Buongiorno, D. C. Venerus, N. Prabhat, et al., “A Benchmark Study on the Thermal Conductivity of Nanofluids,” J. Appl. Phys. 106, 094312 (2009).\nS. Sinha, S. Barjami, G. Iannacchione, A. Schwab, G. Muench, “Off-Axis Thermal Properties of Carbon Nanotube Films,” J. Nanopart. Res. 7(6), 651–657 (2005).\nE. Pop, D. Mann, Q. Wang, K. Goodson, H. Dai, “Thermal Conductance of an Individual Single-Wall Carbon Nanotube above Room Temperature,” Nano Lett. 6(1), 96–100 (2005).\nB. H. Kim and G. P. Peterson, “Effect of Morphology of Carbon Nanotubes on Thermal Conductivity Enhancement of Nanofluids,” AIAA J. Thermophys. Heat Transf. 21(3), 451–459 (2007).\nY. J. Hwang, Y. C. Ahn, H. S. Shin, C. G. Lee, G. T. Kim, H. S. Park, J. K. Lee, “Investigation on Characteristics of Thermal Conductivity Enhancement of Nanofluids,” Current Appl. Phys. 6(6), 1068–1071 (2005).\nM. J. Assael, C. F. Chen, I. N. Metaxa, and W. A. Wakeham, “Thermal Conductivity of Suspensions of Carbon Nanotubes in Water,” Int. J. Thermophys. 25(4), 971–985 (2004).\nH. Xie, et al., “Nanofluids Containing Multiwalled Carbon Nanotubes and Their Enhanced Thermal Conductivities,” J. Appl. Phys. 94(8), 4967–4971 (2003).\nA. V. Okotrub, L. G. Bulusheva, and A. V. Gusel’nikov, “Effect of Purification on the Electron Structure and Field Emission Characteristics of a Carbonaceous Material Containing Single-Wall Carbon Nanotubes,” JETP 99(6), 1244 (2004).\nP. V. Skripov, A. A. Smotritskiy, A. A. Starostin, and A. V. Shishkin, “A Method of Controlled Pulse Heating: Applications,” J. Eng. Thermophys. 16(3), 155–163 (2007).\nD. V. Kosynkin, A. L. Higginbotham, A. Sinitskii, J. R. Lomeda, D. B. Ayrat, “ Katherine K. Price and J. M. Tour, “Longitudinal Unzipping of Carbon Nanotubes to Form Graphenenanoribbons,” Nature 458, 872–876 (2009).",{"VOID":115},"10.1134\u002FS1995078013010102","PUBLICATION","VERIFIED","2024-05-16T09:30:52.268+00:00","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078013010102",[122,138,154,167,181,196],{"id":123,"sortIndex":21,"researcher":20,"roles":124,"affiliations":126,"properties":135,"displayName":137,"givenName":20,"familyName":20},"f90842cf-f4a9-41d1-8aea-edb6ec77b19f",[125],"AUTHOR",[127],{"id":128,"sortIndex":21,"affiliation":129,"properties":20},"713bece5-fb97-4a14-869f-c5782271157c",{"id":128,"createTime":20,"updateTime":20,"relativeEntities":130,"slug":20,"properties":131,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":134,"statistic":20},[],{"title":132},{"VI":133},"Kutateladze Institute of Thermophysics, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":136},{"VI":137},"S. A. Novopashin",{"id":139,"sortIndex":140,"researcher":20,"roles":141,"affiliations":142,"properties":151,"displayName":153,"givenName":20,"familyName":20},"9c19b468-1828-4f16-95bc-dacc9f292295",1,[125],[143],{"id":144,"sortIndex":21,"affiliation":145,"properties":20},"15e643fb-87ba-46da-b1f8-af92beb558d2",{"id":144,"createTime":20,"updateTime":20,"relativeEntities":146,"slug":20,"properties":147,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":150,"statistic":20},[],{"title":148},{"VI":149},"Novosibirsk State University, Novosibirsk, Russia",[],{"title":152},{"VI":153},"M. A. Serebryakova",{"id":155,"sortIndex":52,"researcher":20,"roles":156,"affiliations":157,"properties":164,"displayName":166,"givenName":20,"familyName":20},"80bbd675-37af-4959-8349-befd01ee5194",[125],[158],{"id":144,"sortIndex":21,"affiliation":159,"properties":20},{"id":144,"createTime":20,"updateTime":20,"relativeEntities":160,"slug":20,"properties":161,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":163,"statistic":20},[],{"title":162},{"VI":149},[],{"title":165},{"VI":166},"R. E. Sokolov",{"id":168,"sortIndex":169,"researcher":20,"roles":170,"affiliations":171,"properties":178,"displayName":180,"givenName":20,"familyName":20},"baadd689-e26b-43d0-9d31-c35d177a3361",3,[125],[172],{"id":128,"sortIndex":21,"affiliation":173,"properties":20},{"id":128,"createTime":20,"updateTime":20,"relativeEntities":174,"slug":20,"properties":175,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":177,"statistic":20},[],{"title":176},{"VI":133},[],{"title":179},{"VI":180},"A. V. Zaikovskii",{"id":182,"sortIndex":89,"researcher":20,"roles":183,"affiliations":184,"properties":193,"displayName":195,"givenName":20,"familyName":20},"24958d5b-0149-471c-9d63-f173d2ccdff5",[125],[185],{"id":186,"sortIndex":21,"affiliation":187,"properties":20},"15b81c11-a274-4b52-a421-544e81ad4cbf",{"id":186,"createTime":20,"updateTime":20,"relativeEntities":188,"slug":20,"properties":189,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":192,"statistic":20},[],{"title":190},{"VI":191},"Nikolaev Institute of Inorganic Chemistry, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":194},{"VI":195},"A. V. Okotrub",{"id":197,"sortIndex":198,"researcher":20,"roles":199,"affiliations":200,"properties":209,"displayName":211,"givenName":20,"familyName":20},"24a62221-3ccc-4d7d-bb2c-e476f3a86c4b",5,[125],[201],{"id":202,"sortIndex":21,"affiliation":203,"properties":20},"585a9870-3321-4455-81a6-19e4af7b2d83",{"id":202,"createTime":20,"updateTime":20,"relativeEntities":204,"slug":20,"properties":205,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":208,"statistic":20},[],{"title":206},{"VI":207},"Institute of Chemical Biology and Fundamental Medicine, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":210},{"VI":211},"D. S. Novopashina","ARTICLE",{"url":120,"publisher":214,"properties":234},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":215,"slug":10,"properties":216,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":220,"manageAffiliations":221,"indexDatabases":222,"url":20,"thumbnailPath":20,"statistic":229,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":217,"title":218,"eissn":219},{"VOID":13},{"EN":15},{"VOID":17},[],[],[223],{"id":26,"indexDatabase":224,"url":37,"indexYears":38,"academicFieldIds":20,"indexDatabaseRanking":39},{"id":28,"createTime":20,"updateTime":20,"relativeEntities":225,"label":226,"description":227,"key":34,"publicationTags":228,"standard":20},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"impactFactor":21,"impactFactorByYear":230,"i10Index":53,"i10IndexLast5Year":52,"totalPublication":54,"totalPublicationByYear":231,"totalCitation":66,"totalCitationByYear":232,"totalCitationPerPublication":81,"totalCitationPerPublicationByYear":233,"hindexLast5Year":94,"hindex":94},{"2012":42,"2013":43,"2014":44,"2015":45,"2016":46,"2017":47,"2018":48,"2019":49,"2020":50,"2021":51,"2022":52},{"2008":56,"2009":57,"2010":58,"2011":56,"2012":59,"2013":60,"2014":61,"2015":56,"2016":62,"2017":57,"2018":63,"2019":64,"2020":65},{"2008":68,"2009":69,"2010":70,"2011":71,"2012":72,"2013":73,"2014":74,"2015":75,"2016":76,"2017":77,"2018":78,"2019":79,"2020":80},{"2008":83,"2009":84,"2010":85,"2011":86,"2012":56,"2013":87,"2014":64,"2015":88,"2016":89,"2017":90,"2018":91,"2019":92,"2020":93},{"pages":235,"volume":237},{"VOID":236},"64-68",{"VOID":238},"8",{"total":21,"publishYear":240,"statisticByYear":241},2013,{},"2013-02-28","2026-07-27T06:53:57.686+00:00",[39],false,{"id":247,"createTime":248,"updateTime":249,"relativeEntities":250,"slug":251,"properties":252,"entityType":116,"verifyStatus":117,"verifyTime":265,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":266,"fullTextUrl":20,"authors":267,"publicationType":212,"publisherRelationship":283,"citationCount":21,"citationInfo":304,"publishDate":307,"publishYear":305,"citationAnalyzeStatus":19,"lastCitationAnalyze":308,"indexDatabases":309,"openAccess":20,"references":20,"isForceReanalyzing":245},"16a1e307-6363-475b-80c3-5607e80cbe74","2024-04-09T09:01:25.489+00:00","2026-07-20T18:44:31.168+00:00",[],"Monodisperse-functional-polymeric-particles-and-their-application-for-nanotechnology",{"abstract":253,"title":255,"gsPaper":257,"keywords":259,"references":261,"doi":263},{"EN":254},"This review is devoted to methods of preparing monodisperse polymeric particles with diameters from 30 nm to 5 μm and differing in functional groups and surface morphology. The examples of these particles as carriers for bioligands and as building blocks capable of self-assembling into three-dimensional photonic crystals of a high degree of perfection are presented. Methods for modifying polymeric particles by chromophores and luminophores, as well as silver, gold, magnetite, and polypyrrole nanoparticles were described. The efficiency of three-dimensional ordered arrays from polymeric particles as templates for the synthesis of inverse inorganic structures was revealed. Sensing arrays of luminophore-containing particles with an optical response to volatile analytes were also obtained.",{"EN":256},"Monodisperse functional polymeric particles and their application for nanotechnology",{"VOID":258},"[\"11853470773960967207\"]",{"EN":260},"",{"VOID":262},"V. I. Eliseeva, S. S. Ivanchev, S. I. Kuchanov, and A. V. Lebedev, Emulsion Polymerization and Its Application in Industry (Khimiya, Moscow, 1976; Plenum, New-York, 1981).\nV. I. Eliseeva, Polymer Dispersions (Khimiya, Moscow, 1980) [in Russian].\nRadical Polymerization, Ed. by S. S. Ivanchev (Khimiya, Moscow, 1985) [in Russian].\nN. I. Prokopov, I. A. Gritskova, Y R. Cherkasov, and A. E. Chalykh, Usp. Khim. 65(2), 178–192 (1996).\nY P. Zubov, A. E. Ivanova, L. S. Zhigis, E. M. Rapoport, E. A. Markvicheva, Yu. V. Lukin, and S. Yu. Zaitsev, Bioorg. Khim. 25(11), 868–880 (1999) [Russ. J. Bioorg. Chem. 25 (11), 772–784 (1999)].\nI. S. Pavlova, Yu. Y Lukin, Y A. Kovalenko, D. N. Avdeev, Y A. Kul’shin, and V. P. Zubov, Bioorg. Khim. 20(7), 731–739(1994).\nO. Y Zhorov, Y A. Preigerzon, and Yu. V. Lukin, Bioorg. Khim. 21(4), 261–263 (1995).\nYu. V. Lukin, V. D. Trifonov, S. I. Turkin, and V. P. Zubov, Tr. Inst.—Mosk. Khim.-Tekhnol. Inst. im. D. I. Mendeleeva 135(1), 137–141 (1985).\nN. A. Chaika, “Reaction of Latex Agglutination,” in Immunological Diagnosis of Virus Infections, Ed. by T. V. Peradze and P. M. Khalonen (Meditsina, Moscow, 1981), pp. 121–143 [in Russian].\nV A. Sabetskii, in AIDS and Related Infections (State Research Institute of Highly Pure Biopreparations, St. Petersburg, 1998), pp. 44–46 [in Russian].\nA. Yu. Men’shikova, B. M. Shabsel’s, Yu. O. Skurkis, K. S. Inkin, N. A. Chekina, and S. S. Ivanchev, Zh. Obshch. Khim. 77(3), 386–394 (2007) [Russ. J. Gen. Chem. 77 (3), 354–362 (2007)].\nE. I. Isaeva, V. V. Gorbunova, T. B. Boitsova, M. P. Sukontseva, A. Yu. Men’shikova, and Yu. O. Skurkis, Zh. Obshch. Khim. 75(9), 1412–1417 (2005) [Russ. J. Gen. Chem. 75 (9), 1340–1345 (2005)].\nO. Kalinina and E. Kumacheva, Macromolecules 32(12), 4122–4129(1999).\nA. Yu. Menshikova, B. M. Shabsels, N. N. Shevchenko, A G. Bazhenova, A. B. Pevtsov, A. V. Sel’kin, and A. Yu. Bilibin, Colloids Surf., A 298(1–2), 27–33 (2007).\nA. G. Bazhenova, A. V. Sel’kin, A. Yu. Men’shikova, and N. N. Shevchenko, Fiz. Tverd. Tela (St. Petersburg) 49(11), 2010–2021 (2007) [Phys. Solid State 49 (11), 2109–2120 (2007)].\nS. S. Ivanchev, Usp. Khim. 60(7), 1368–1390 (1991).\nV. N. Pavlyuchenko and S. S. Ivanchev, Usp. Khim. 50(4), 715–745 (1981); S. S. Ivančev and V. N. Pavl-jucenko, Acta Polym. 32 (7), 407–412 (1981).\nV. N. Pavlyuchenko, S. S. Ivanchev, N. A. Byrdina, Z. M. Alekseeva, and N. N. Lesnikova, Dokl. Akad. Nauk SSSR 259(3), 641–645 (1981).\nReactions in Polymer Systems, Ed. by S. S. Ivanchev (Khimiya, Leningrad, 1987) [in Russian].\nYu. V Lukin, V. I. Bakharev, A. S. Zaichenko, S. A. Vo-ronov, V. P. Zubov, I. A. Gritskova, and A. N. Pravedni-kov, Dokl. Akad. Nauk SSSR 285(1), 159–161 (1985).\nV. I. Eliseeva, Dokl. Akad. Nauk SSSR 270(3), 625–628 (1983).\nV. I. Eliseeva and T. R. Aslamazova, Usp. Khim. 60(2), 398–429 (1991).\nS. V. Bogdanova, Yu. V. Solov’ev, V. I. Eliseeva, and A. V. Zuikov, Kolloidn. Zh. 47(4), 781–782 (1985).\nI. A. Gritskova, I. G. Krasheninnikova, D. I. Al’-Kha-varin, P. V. Nuss, E. A. Dorokhova, and I. Gzhiwa-Niksin’ska, Kolloidn. Zh. 57(2), 182–185 (1995) [Colloid J. 57 (2), 166–169 (1995)].\nA. D. Latif, E. B. Malyukova, and I. A. Gritskova, Vysokomol. Soedin., Ser. B 30(10), 742–744 (1988).\nI. S. Lishanskii, A. Yu. Men’shikova, T. G. Evseeva, E. E. Komarovskaya, V E. Shubin, and N. A Sakharova, Vysokomol. Soedin., Ser. B 33(6), 413–416 (1991).\nV. E. Shubin, N. Y Isakova, M. P. Sidorova, A Yu. Men’shikova, and T. G. Evseeva, Kolloidn. Zh. 52(5), 535–541 (1990).\nA. Yu. Men’shikova, T. G. Evseeva, B. M. Shabsel’s, I. E. Il’ina, and G. P. Vlasov, Kolloidn. Zh. 59(5), 671–675 (1997) [Colloid J. 59 (5), 620–624 (1997)].\nA. Yu. Men’shikova, T. G. Evseeva, and B. M. Shabsel’s, RF Patent No. 2 164 919(2001).\nV. E. Shubin, R. J. Hunter, and R. W. O’Brien, J. Colloid Interface Sci. 159(1), 174–183 (1993).\nV. Shubin, Yu. Samoshina, A. Menshikova, and T. Evseeva, Colloid Polym. Sci. 275(7), 655–660 (1997).\nV. A. Pripisnova, L. E. Ermakova, E. Y Golikova, A. Yu. Men’shikova, and M. P. Sidorova, Kolloidn. Zh. 71 (2009).\nT. G. Evseeva, A. Yu. Men’shikova, B. M. Shabsel’s, and Yu. O. Skurkis, Strukt. Din. Mol. Sist. (Kazan) 1(2), 270–273 (2005).\nA. Yu. Men’shikova, T. G. Evseeva, B. M. Shabsel’s, I. V. Balanina, A. K. Sirotkin, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 78(6), 1029–1033 (2005) [Russ. J. Appl. Chem. 78(6), 1008–1012 (2005)].\nI. V. Kalashnikova, N. D. Ivanova, T. G. Evseeva, A. Yu. Menshikova, E. G. Vlakh, and T. B. Tennikova, J. Chromatogr., A 1144(1), 40–47 (2007).\nA. Yu. Men’shikova, T. G. Evseeva, Yu. O. Skurkis, B. M. Shabsel’s, E. N. Vlasova, and S. S. Ivanchev, Vysokomol. Soedin., Ser. A 46(9), 1479–1487 (2004) [Polym. Sci., Ser. A 46(9), 898–905 (2004)].\nA. Yu. Menshikova, T. G. Evseeva, Yu. O. Skurkis, T. B. Tennikova, and S. S. Ivanchev, Polymer 46(4), 1417–1425(2005).\nJ. Janča, I. A. Ananieva, T. G. Evseeva, A. Yu. Menshikova, and J. Dupak, J. Chromatogr., A 1046(1–2), 167–173 (2004).\nJ. Janča, I. A. Ananieva, T. G. Evseeva, and A. Yu. Menshikova, J. Chromatogr., B 800(1), 33–40 (2004).\nI. A. Ananieva, T. G. Evseeva, A. Yu. Menshikova, and J. Janča, Collect. Czech. Chem. Commun. 69(2), 322–329 (2004).\nA. Yu. Men’shikova, T. G. Evseeva, M. V Peretolchin, N. A. Chekina, and S. S. Ivanchev, Vysokomol. Soedin., Ser. A43(4), 607–615 (2001) [Polym. Sci., Ser. A 43 (4), 366–373 (2001)].\nA. Yu. Men’shikova, T. G. Evseeva, N. A. Chekina, M. V Peretolchin, Yu. O. Skurkis, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 75(12), 2029–2034 (2002) [Russ. J. Appl. Chem. 75 (12), 1993–1998 (2002)].\nA. Yu. Menshikova, T. G. Evseeva, N. A. Chekina, Yu. O. Skurkis, and S. S. Ivanchev, Prog. Colloid Polym. Sci. 124, 68–72 (2003).\nA. Yu. Men’shikova, T. G. Evseeva, N. A. Chekina, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 74(3), 478–482 (2001) [Russ. J. Appl. Chem. 74 (3), 489–493 (2001)].\nA. Yu. Men’shikova, T. G. Evseeva, N. A. Chekina, Yu. O. Skurkis, and S. S. Ivanchev, Vysokomol. Soedin., Ser. A 45(4), 623–630 (2003) [Polym. Sci., Ser. A 45 (4), 380–385 (2003)].\nA. Yu. Men’shikova, T. G. Evseeva, N. A. Chekina, Yu. O. Skurkis, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 74(10), 1677–1683 (2001) [Russ. J. Appl. Chem. 74 (10), 1728–1734 (2001)].\nA. Yu. Men’shikova, T. G. Evseeva, K. S. Inkin, Yu. O. Skurkis, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 79(10), 1680–1685 (2006) [Russ. J. Appl. Chem. 79 (10), 1660–1665 (2006)].\nA. Yu. Men’shikova, N. N. Shevchenko, T. G. Evseeva, B. M. Shabsel’s, and A. V. Yakimanskii, Patent Appl. No. 2 008 136 042, Russia (2008).\nA. Yu. Men’shikova, Yu. O. Skurkis, T. G. Evseeva, Z. P. Shkarubskaya, T. B. Tennikova, and S. S. Ivanchev, Zh. Prikl. Khim. (St. Petersburg) 77(12), 2036–2041 (2004) [Russ. J. Appl. Chem. 77 (12), 2011–2016 (2004)].\nA. Yu. Men’shikova, I. B. Dmitrieva, V I. Kuchuk, Yu. O. Skurkis, T. G. Evseeva, and B. M. Shabsel’s, Kolloidn. Zh. 61(6), 799–808 (1999) [Colloid J. 61 (6), 740–748 (1999)].\nA. Yu. Men’shikova, Yu. O. Skurkis, V I. Kuchuk, I. B. Dmitrieva, T. G. Evseeva, and B. M. Shabsel’s, Kolloidn. Zh. 63(5), 629–636 (2001) [Colloid J. 63 (5), 573–589 (2001)].\nA. Yu. Men’shikova, B. M. Shabsel’s, T. G. Evseeva, E. N. Krasnikova, and G. P. Vlasov, Strukt. Din. Mol. Sist. (Kazan) 10(3), 73–77 (2003).\nA. Yu. Men’shikova, T. G. Evseeva, Yu. O. Skurkis, M. Yu. Dorosh, S. V. Burov, and S. S. Ivanchev, Vysokomol. Soedin., Ser. A 49(5), 851–858 (2007) [Polym. Sci., Ser. A 49 (5), 564–570 (2007)].\nA. Yu. Men’shikova, A. S. Kvetnaya, Yu. V. Kharitonova, B. M. Shabsel’s, and G. P. Vlasov, in Childhood Infections (Research Institute of Childhood Infections, St. Petersburg, 1994), Vol. 4, pp. 67–72 [in Russian].\nA. Yu. Men’shikova, B. M. Shabsel’s, G. P. Vlasov, and A. S. Kvetnaya, RF Patent No. 2113172 (1998).\nA. V. Kharitonova, E. R. Bychkov, O. K. Granstrem, Yu. I. Polyakov, A. Yu. Men’shikova, T. G. Evseeva, and S. A. Dambinova, Vopr. Med. Khim. 49(1), 80–85 (2003).\nA. V. Kharitonova, A. Yu. Men’shikova, T. G. Evseeva, N. A. Chekina, E. R. Bychkov, D. I. Skulyabin, and S. A. Dambinova, Byull. Eksp. Biol. Med. 135(1), 94–97 (2005).\nT. M. Zimina, V. V. Luchinin, V E. Migunova, L. A. Kraeva, G. Ya. Tseneva, A. Yu. Men’shikova, B. M. Shabsel’s, M. V. Dulatova, and G. F. Shpilyuk, RF Patent No. 2 298 798 (2006).\nA. Yu. Men’shikova, N. N. Shevchenko, T. G. Evseeva, B. M. Shabsel’s, E. I. Isaeva, V. V Gorbunova, and T. B. Boitsova, Ross. Nanotekhnol. 4 (2009) (in press) [Nanotechnol. Russ. 4 (2009)].\nA. Yu. Men’shikova, B. M. Shabsel’s, T. G. Evseeva, N. N. Shevchenko, and A. Yu. Bilibin, Zh. Prikl. Khim. (St. Petersburg) 78(1), 161–167 (2005) [Russ. J. Appl. Chem. 78 (1), 159–165 (2005)].\nA. Yu. Men’shikova, A. Yu. Bilibin, N. N. Shevchenko, B. M. Shabsel’s, T. G. Evseeva, A. G. Bazhenova, and A. V Sel’kin, Vysokomol. Soedin., Ser. A 48(9), 1579–1587 (2006) [Polym. Sci., Ser. A 48 (9), 910–917 (2006)].\nA. V. Sel’kin, A. Yu. Bilibin, A. Yu. Men’shikova, Yu. A. Pashkov, N. N. Shevchenko, and A. G. Bazhenova, Izv. Akad. Nauk, Ser. Fiz., No. 8, 1111–1112 (2005).\nA. G. Bazhenova, A. Yu. Men’shikova, A. V. Sel’kin, V. G. Fedotov, N. N. Shevchenko, and A. V. Yakimanskii, Khim. Vys. Energ. 42(4), 27–28 (2008) [High Energy Chem. 42 (7), 527–528 (2008)].\nN. N. Shevchenko, A. Yu. Men’shikova, A. G. Bazhenova, A. V. Sel’kin, E. S. Anishchenko, and A. V. Yakimanskii, Khim. Vys. Energ. 42(4), 29–66 (2008) [High Energy Chem. 42 (7), 529–531 (2008)].\nA. V Yakimansky A. Yu. Menshikova, N. N. Shevchenko, B. M. Shabsels, A. G. Bazhenova, A. V Sel’kin, S. K. Sazonov, A. I. Vedernikov, S. P. Gromov, V. A. Sazhnikov, and M. V. Alfimov, Polym. Adv. Technol. 20(6), 581–588(2009).\nP. V. Lebedev-Stepanov, P. E. Khokhlov, D. S. Ionov, A. V Yakimanskii, A. Yu. Men’shikova, N. N. Shevchenko, T. G. Evseeva, and M. V Alfimov, Ross. Nanotekhnol. 4(3–4), 54–59 (2009) [Nanotechnol. Russ. 4 (3–4), 160–165(2009)].\nA. Yu. Men’shikova, B. M. Shabsel’s, and T. G. Evseeva, Zh. Prikl. Khim. (St. Petersburg) 76(5), 871–875 (2003) [Russ. J. Appl. Chem. 76 (5), 822–826 (2003)].\nA. Yu. Men’shikova, N. N. Shevchenko, T. G. Evseeva, and A. V Yakimanskii, in Proceedings of the XX Symposium “Modern Chemical Physics,” Tuapse, Krasnodar region, Russia, September 15–26, 2008 (Tuapse, 2008), p. 23.\nA. Yu. Menshikova, N. N. Shevchenko, A. V Yakimansky, A. G. Bazhenova, and A. V Sel’kin, in Abstracts of the 22nd Conference of the European Colloid and Interface Society, Cracow, Poland, August 31-September 5, 2008 (Cracow, 2008), p. 164.\nA. V Yakimanskii, A. Yu. Men’shikova, T. G. Evseeva, N. N. Shevchenko, and A. Yu. Bilibin, Ross. Nanotekhnol. 1(1–2), 171–178 (2006).\nA. Yu. Men’shikova, N. N. Shevchenko, B. M. Shabsel’s, A. V Sel’kin, A. G. Bazhenova, and A. V. Yakimanskii, Khim. Vys. Energ. 42 (Prilozh. 4), 32–34 (2008) [High Energy Chem. 42 (7), 532–534 (2008)].\nS. P. Gromov, Ross. Nanotekhnol. 1(1), 29–45 (2006).\nA. Khlebunov, D. Ionov, V Sazhnikov, A. Koshkin, A. Aristarkhov, A. Petrov, N. Shevchenko, A. Menshikova, A. Yakimanski, and M. Alfimov, in Abstracts of the Eurosensors XXII Conference, September 7–11, 2008 (Dresden, 2008), p. 106.\nV. A. Sazhnikov, A. A. Khlebunov, and M. V Alfimov, Khim. Vys. Energ. 41(1), 28–31 (2008) [High Energy Chem. 41 (1), 25–28 (2008)].",{"VOID":264},"10.1134\u002FS1995078010010039","2024-05-12T12:34:58.287+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078010010039",[268],{"id":269,"sortIndex":21,"researcher":20,"roles":270,"affiliations":271,"properties":280,"displayName":282,"givenName":20,"familyName":20},"aa9e0960-3145-425e-884f-d7f1f276231d",[125],[272],{"id":273,"sortIndex":21,"affiliation":274,"properties":20},"f64b22ca-953d-478b-94cd-896d0ef61c0f",{"id":273,"createTime":20,"updateTime":20,"relativeEntities":275,"slug":20,"properties":276,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":279,"statistic":20},[],{"title":277},{"VI":278},"St. Petersburg Institute of Macromolecular Compounds, Russian Academy of Sciences, St. Petersburg, Russia",[],{"title":281},{"VI":282},"A. Yu. Men’shikova",{"url":20,"publisher":284,"properties":20},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":285,"slug":10,"properties":286,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":290,"manageAffiliations":291,"indexDatabases":292,"url":20,"thumbnailPath":20,"statistic":299,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":287,"title":288,"eissn":289},{"VOID":13},{"EN":15},{"VOID":17},[],[],[293],{"id":26,"indexDatabase":294,"url":37,"indexYears":38,"academicFieldIds":20,"indexDatabaseRanking":39},{"id":28,"createTime":20,"updateTime":20,"relativeEntities":295,"label":296,"description":297,"key":34,"publicationTags":298,"standard":20},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"impactFactor":21,"impactFactorByYear":300,"i10Index":53,"i10IndexLast5Year":52,"totalPublication":54,"totalPublicationByYear":301,"totalCitation":66,"totalCitationByYear":302,"totalCitationPerPublication":81,"totalCitationPerPublicationByYear":303,"hindexLast5Year":94,"hindex":94},{"2012":42,"2013":43,"2014":44,"2015":45,"2016":46,"2017":47,"2018":48,"2019":49,"2020":50,"2021":51,"2022":52},{"2008":56,"2009":57,"2010":58,"2011":56,"2012":59,"2013":60,"2014":61,"2015":56,"2016":62,"2017":57,"2018":63,"2019":64,"2020":65},{"2008":68,"2009":69,"2010":70,"2011":71,"2012":72,"2013":73,"2014":74,"2015":75,"2016":76,"2017":77,"2018":78,"2019":79,"2020":80},{"2008":83,"2009":84,"2010":85,"2011":86,"2012":56,"2013":87,"2014":64,"2015":88,"2016":89,"2017":90,"2018":91,"2019":92,"2020":93},{"total":21,"publishYear":305,"statisticByYear":306},2010,{},"2010-03-19","2026-07-20T18:44:31.167+00:00",[39],{"id":311,"createTime":312,"updateTime":313,"relativeEntities":314,"slug":315,"properties":316,"entityType":116,"verifyStatus":117,"verifyTime":327,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":328,"fullTextUrl":20,"authors":329,"publicationType":212,"publisherRelationship":384,"citationCount":410,"citationInfo":411,"publishDate":414,"publishYear":412,"citationAnalyzeStatus":19,"lastCitationAnalyze":415,"indexDatabases":416,"openAccess":20,"references":20,"isForceReanalyzing":245},"8da8b926-c210-48ea-8132-e40fcd447cdb","2023-12-29T10:43:15.677+00:00","2026-07-20T18:25:24.288+00:00",[],"A-Monte-Carlo-simulation-of-the-processes-of-nanostructure-growth-The-time-scale-event-scheduling-algorithm",{"abstract":317,"title":319,"gsPaper":321,"references":323,"doi":325},{"EN":318},"The SilSim3D program package is developed to conduct Monte Carlo simulations of the kinetics of growth, evaporation, and annealing of thin layers on solid substrates on the basis of an original algorithm of scheduling events on a real time scale. The model allows the simulation of various nanoelectronic technological processes in multicomponent physical and chemical systems of more than 107 particles in time intervals comparable with the actual experimental times. The initial stages of atomic layer deposition and the growth of silicon nanowhiskers are simulated as an example.",{"EN":320},"A Monte Carlo simulation of the processes of nanostructure growth: The time-scale event-scheduling algorithm",{"VOID":322},"[\"3370927803814270010\"]",{"VOID":324},"J. V. Seiple, C. Ebner, and J. P. Pelz, Phys. Rev. B: Condens. Matter 53(23), 15 432–15 435 (1996).\nV. M. Burlakov, G. A. D. Briggs, A. P. Sutton, and Y. Tsukahara, Phys. Rev. Lett. 86(14), 3052–3055 (2001).\nM. Deminsky, A. Knizhnik, I. Belov, S. Umanskii, E. Rykova, A. Bagaturyants, B. Potapkin, M. Stoker, and A. Korkin, Surf. Sci. 549, 67–86 (2004).\nI. M. Iskandarova, A. A. Knizhnik, I. V. Belov, E. A. Rykova, A. A. Bagatur’yants, S. Ya. Umanskii, B. V. Potapkin, and M. W. Stoker, Khim. Fiz. 26(3), 79–89 (2007) [Russ. J. Phys. Chem. B 1 (2), 102–112 (2007)].\nI. G. Neizvestny, N. L. Shwartz, Z. Sh. Yanovitskaya, and A. V. Zverev, Comput. Phys. Commun. 147, 272–275 (2002).\nA. V. Zverev, I. G. Neizvestny, A. V. Chemakin, N. L. Shwartz, and Z. Sh. Yanovitskaya, Mikroelektronika 33(1), 1–11 (2004) [Russ. Microelectron. 33 (3), 137–146 (2004)].\nI. G. Neizvestny, N. L. Shwartz, Z. Sh. Yanovitskaya, and A. V. Zverev, Key Eng. Mater. 352, 5–8 (2007).\nI. G. Neizvestny, N. L. Shwartz, Z. S. Yanovitskaya, and A. V. Zverev, Comput. Mater. Sci. 36, 36–41 (2006).\nT. Suntola, Appl. Surf. Sci. 100\u002F101, 391–398 (1996).\nM. Leskela and M. Ritala, Thin Solid Films 409, 138–146 (2002).\nJ.-W. Lim, H.-S. Park, and S.-W. Kang, J. Electrochem. Soc. 148(6), C403–C408 (2001).\nA. Satta, A. Vantomme, J. Shuhmacher, C. M. Whelan, V. Sutcliffe, and K. Maex, Appl. Phys. Lett. 84(22), 4571–4573 (2004).\nJ.-H. Kim, J.-Y. Kim, and S.-W. Kang, J. Appl. Phys. 97, 093 505 (2005).\nD. M. Hausmann, P. de Rouffignac, A. Smith, R. Gordon, and D. Monsma, Thin Solid Films 443, 1 (2003).\nJ. Kikkawa, Y. Ohno, and S. Takeda, Appl. Phys. Lett. 86, 123 109 (2005).\nL. Schubert, P. Werner, N. D. Zakharov, G. Gerth, F. M. Kolb, L. Long, U. Gosele, and T. Y. Tan, Appl. Phys. Lett. 84, 4968–4970 (2004).\nE. I. Givargizov, Growth of Filamentary and Scaly Crystals from Vapor (Nauka, Moscow, 1977) [in Russian].\nJ. L. Liu, S. J. Cai, G. L. Jin, S. G. Thomas, and K. L. Wang, J. Cryst. Growth 200, 106–111 (1999).",{"VOID":326},"10.1134\u002FS1995078009030094","2024-06-23T18:17:44.797+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078009030094",[330,345,358,371],{"id":331,"sortIndex":21,"researcher":20,"roles":332,"affiliations":333,"properties":342,"displayName":344,"givenName":20,"familyName":20},"ba6f7f73-00f7-4b63-80ef-7fbe8ae7b856",[125],[334],{"id":335,"sortIndex":21,"affiliation":336,"properties":20},"1606d84d-c190-420a-90bf-64537ff46b87",{"id":335,"createTime":20,"updateTime":20,"relativeEntities":337,"slug":20,"properties":338,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":341,"statistic":20},[],{"title":339},{"VI":340},"Institute of Semiconductor Physics, Siberian Division, Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":343},{"VI":344},"A. V. Zverev",{"id":346,"sortIndex":140,"researcher":20,"roles":347,"affiliations":348,"properties":355,"displayName":357,"givenName":20,"familyName":20},"ec57c801-73f8-427d-b35e-898a60ff7a46",[125],[349],{"id":335,"sortIndex":21,"affiliation":350,"properties":20},{"id":335,"createTime":20,"updateTime":20,"relativeEntities":351,"slug":20,"properties":352,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":354,"statistic":20},[],{"title":353},{"VI":340},[],{"title":356},{"VI":357},"K. Yu. 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S. Artemov, “Polishing Nanodiamonds,” Solid State Phys. 46, 687 (2004).",{"doi":497},"10.1134\u002F1.1711453",{"id":20,"text":499,"url":20,"identifiers":500},"M. J. Jackson, B. Mills, and M. P. Hitchiner, “Controlled Wear of Vitrified Abrasive Materials for Precision Grinding Applications.” Sadhana 28, 897 (2003).",{"doi":501},"10.1007\u002FBF02703320",{"id":20,"text":503,"url":20,"identifiers":504},"V. P. Bakharev, “Dispersion of Ceramics and Composites in Diamond Finishing by Free Abrasive,” Russ. Eng. Res. 29, 162–168 (2009).",{"doi":505},"10.3103\u002FS1068798X09020129",{"id":20,"text":507,"url":20,"identifiers":508},"Yu. D. Filatov, “Assessment of Surface Roughness and Reflectance of Nonmetallic. Products upon Diamond Abrasive Finishing,” Sverkhtverd. Mater., No. 5, 70–81 (2009).",{},{"id":20,"text":510,"url":20,"identifiers":511},"P. A. Storozhenko, Sh. L. Guseinov, and S. I. Malashin, “Nanodispersed Powders: Synthesis Methods and Practical Applications,” Nanotechnol. Russia 4, 262 (2009).",{"doi":512},"10.1134\u002FS1995078009050024",{"id":20,"text":514,"url":20,"identifiers":515},"V. V. Pokropivnyi and P. M. Silenko, “Silicon Carbide Nanotubes and Nanotubular Fibers: Synthesis, Stability, Structure and Classification,” Theor. Exp. Chem. 42, 3–15 (2006).",{"doi":516},"10.1007\u002Fs11237-006-0010-y",{"id":20,"text":518,"url":20,"identifiers":519},"A. K. Khanra, “Production of Boron Carbide Powder by Carbothermal Synthesis of Gel Material,” Bull. Mater. Sci. 30, 93–96 (2007).",{"doi":520},"10.1007\u002Fs12034-007-0016-7",{"id":20,"text":522,"url":20,"identifiers":523},"S. P. Bogdanov, “Influence of Superstoichiometric Boron on the Synthesis of Cubic Boron Nitride,” Glass Phys. Chem. 34, 336–339 (2008).",{"doi":524},"10.1134\u002FS1087659608030164",{"id":20,"text":526,"url":20,"identifiers":527},"E. V. Degtyareva, I. I. Kabakova, E. B. Skorodumova, and V. E. Armyanovskii, “An Abrasive-Resistant Corundum Ceramic for Drawing Microwires,” Refract. Industr. Ceram. 23, 82–87 (1982).",{},{"id":20,"text":529,"url":20,"identifiers":530},"Xiao-lan Song, Peng Qu, Hai-pin Yang, Xi He, and Guan-zhou Qiu, “Synthesis of Γ-Al2O3 Nanoparticles by Chemical Precipitation Method,” J. Cent. South Univ. Technol. 12, 536–541 (2005).",{"doi":531},"10.1007\u002Fs11771-005-0118-6",{"id":20,"text":533,"url":20,"identifiers":534},"Yu. A. Kotov and O. M. Samatov, “Characteristics of Aluminum Oxide Powders Produced by Pulsed Heating of a Wire,” Poverkhnost’, No. 10–14, 90–94 (1994).",{},{"id":20,"text":536,"url":20,"identifiers":537},"A. P. Safronov, E. G. Kalinina, D. A. Blagodetelev, and Yu. A. Kotov, “Separation of Aluminum Oxide Powders with Different Degrees of Aggregation by Sedimentation in an Aqueous Medium,” Nanotechnol. Russia 5, 498 (2010).",{"doi":538},"10.1134\u002FS1995078010070104",{"id":20,"text":540,"url":20,"identifiers":541},"V. M. Belousov, V. M. Chertov, E. V. Rozhkova, V. I. Litvin, and V. A. Zazhigalov, “A Sol-Gel Method for Synthesizing Porous Iron-Aluminum Oxide Sub-stances and Regulation of their Physicochemical Characteristics,” Teor. Eksp. Khim. 33, 120–123 (1997).",{},{"id":20,"text":543,"url":20,"identifiers":544},"L. Silyakov, N. S. Pesotskaya, and V. I. Yukhvid, “Self-propagated High-Temperature Synthesis and Properties of Corundum-Based Abrasive Composition Material,” Neorg. Mater. 31, 351–357 (1995).",{},{"id":20,"text":546,"url":20,"identifiers":547},"A. G. Tarasov, V. A. Gorshkov, and V. I. Yukhvid, “Phase Composition and Microstructure of Al2O3-Cr2O3 Solid Solutions Prepared by Self-Propagating High-Temperature Synthesis,” Inorg. Mater. 43, 724 (2007).",{"doi":548},"10.1134\u002FS0020168507070102",{"id":20,"text":550,"url":20,"identifiers":551},"A. G. Merzhanov, I. P. Borovinskaya, V. K. Prokudina, N. S. Pesotskaya, and M. A. Nasonova, “SHS-Abrasives: Production, Properties, Application,” Nauka Proizvodstvu, No. 8, 4–12 (1998).",{},{"id":20,"text":553,"url":20,"identifiers":554},"V. V. Victorov, L. N. Kovalev, and B. P. Virachev, “Fine Structure of α-Al2O3 Based Solid Solutions,” Inorg. Mater. 37, 983 (2001).",{"doi":555},"10.1023\u002FA:1012312606012",{"id":20,"text":529,"url":20,"identifiers":557},{"doi":531},{"id":20,"text":559,"url":20,"identifiers":560},"Nam-Hoon Kimi, Jong-Heun Lim, Sang-Yong Kim, and Eui-Goo Chang, “Semi-Abrasive Free Slurry with Acid Colloidal Silica for Copper Chemical Mechanical Planarization,” J. Mater. Sci.: Mater. Electron. 16, 629–632 (2005).",{"doi":561},"10.1007\u002Fs10854-005-3241-0",{"id":20,"text":563,"url":20,"identifiers":564},"A. P. Garshin, V. M. Gropyanov, and Yu. V. Lagunov, Abrasive Materials (Mashinostroenie, Leningrad, 1983) [in Rusian].",{},{"id":20,"text":566,"url":20,"identifiers":567},"V. V. Viktorov, A. A. Fotiev, and V. D. Badich, “Abrasive and Thermal Properties of Al2O3-Cr2O3 Solid Solutions,” Inorg. Mater. 32, 55 (1996).",{},{"id":20,"text":569,"url":20,"identifiers":570},"L. F. Chekhomova, “Abrasive Properties of Modified Chromia,” Inorg. Mater. 37, 274 (2001).",{"doi":571},"10.1023\u002FA:1004173632509",{"id":20,"text":573,"url":20,"identifiers":574},"L. F. Koroleva, Modified Oxides, Oxohydroxide, Chromium Spinels for Abrasive and Pigmentary Materials (UrO RAN, Yekaterinburg, 2002) [in Russian].",{},{"id":20,"text":576,"url":20,"identifiers":577},"L. F. Koroleva, “Abrasive Properties of Aluminum Iron Oxide Nanoparticles,” Inorg. Mater. 45, 1158 (2009).",{"doi":578},"10.1134\u002FS0020168509100148",{"id":20,"text":580,"url":20,"identifiers":581},"P. N. Orlov, Technological Ensuring of the Quality of Parts by Finishing Techniques (Mashinostroenie, Moscow, 1988) [in Russian].",{},{"id":20,"text":583,"url":20,"identifiers":584},"P. I. Yashcheritsyn and A. N. Martynov, Finishing of Details in Engineering (Vysh. shkola, Minsk, 1983) [in Russian].",{},{"id":20,"text":586,"url":20,"identifiers":587},"L. F. Koroleva, “Tribochemical Activity of Mixed Oxides Abrasive Materials in a Metal Polishing,” Fiz. Khim. Obrab. Mater., No. 4, 84–92 (2006).",{},{"id":20,"text":589,"url":20,"identifiers":590},"L. F. Koroleva, “Synthesis and Abrasive Properties of Nanoparticulate MoO2-Modified Al2−xFexO3 and Fe2−yAlyO3 Solid Solutions,” Inorg. Mater. 46, 1330 (2010).",{"doi":591},"10.1134\u002FS0020168510120113",{"id":20,"text":593,"url":20,"identifiers":594},"V. V. Rogov, N. D. Rublev, T. L. Krotenko, and A. V. Troyan, “A Study of Intensity of Tribochemical Contact Interaction between a Polishing Compound and Sapphire in Machining,” Sverkhtverd. Mater., No. 4, 75–78 (2008).",{},{"id":20,"text":596,"url":20,"identifiers":597},"B. I. Kostetskii, I. G. Nosovskii, A. K. Karaulov, et al., Surface Strength of Materials in Friction (Tekhnika, Kiev, 1976) [in Russian].",{},{"id":20,"text":599,"url":20,"identifiers":600},"E. A. Marchenko, On the Nature of Fracture of Metal Surface in Friction (Nauka, Moscow, 1979) [in Russian].",{},{"id":20,"text":602,"url":20,"identifiers":603},"B. A. Migachev, Identification of Damage at Metal Deformation (UrO RAN, Yekaterinburg, 2001) [in Russian].",{},{"id":20,"text":605,"url":20,"identifiers":606},"Y.-Y. Lin and S.-P. Lo, “A Study of a Finite Element Model for the Chemical Mechanical Polishing Process,” Int. J. Adv. Manuf. Technol. 23, 644–650 (2004).",{"doi":607},"10.1007\u002Fs00170-002-1469-x",{"id":20,"text":609,"url":20,"identifiers":610},"Y. G. Wang, Y. W. Zhao, and X. Li, “Modelung the Effects of Abrasive Size, Surface Oxidizer Concentration and Binding Energy on Chemical Mechanical Polishing at Molecular Scale,” Tribol. Int. 41, 202–210 (2008).",{"doi":611},"10.1016\u002Fj.triboint.2007.08.004",{"id":20,"text":613,"url":20,"identifiers":614},"E. E. Bibik, “Mechanochemistry of Metal Polishing with an Abrasive Suspension,” Russ. J. Appl. Chem. 83, 811–815 (2010).",{"doi":615},"10.1134\u002FS1070427210050095",{"id":20,"text":617,"url":20,"identifiers":618},"Ping Liu, Xinchun Lu, Yuhong Liu, Jianbin Luo, and Guoshun Pan, “Chemical Mechanical Planarization of Copper Using Ethylenediamine and Hydrogen Peroxide Based Slurry,” Adv. Tribol., Pt. 3 1, 908–911 (2010).",{},{"id":20,"text":620,"url":20,"identifiers":621},"V. G. Myagkov, L. E. Bykova, L. A. Li, et al., “Solid Phase Reactions, Self Propagating High Temperature Synthesis, and Martensitic Transformations in Thin Films,” Dokl. Phys. 47, 95 (2002).",{"doi":622},"10.1134\u002F1.1462075",{"id":20,"text":624,"url":20,"identifiers":625},"V. V. Boldyrev, Reaction Ability of Solids (Sib. Branch RAN, Novosibirsk, 1997) [in Russian].",{},{"id":627,"createTime":628,"updateTime":629,"relativeEntities":630,"slug":631,"properties":632,"entityType":116,"verifyStatus":117,"verifyTime":643,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":644,"fullTextUrl":20,"authors":645,"publicationType":212,"publisherRelationship":687,"citationCount":169,"citationInfo":713,"publishDate":716,"publishYear":714,"citationAnalyzeStatus":19,"lastCitationAnalyze":629,"indexDatabases":717,"openAccess":20,"references":20,"isForceReanalyzing":245},"980b128f-7831-4130-808b-0228e7353ba9","2024-01-11T15:14:16.425+00:00","2026-07-08T06:03:14.037+00:00",[],"Nanomaterials-in-nuclear-engineering-and-radioecology",{"abstract":633,"title":635,"gsPaper":637,"references":639,"doi":641},{"EN":634},"Key results concerning large-scale application of nanomaterials in nuclear engineering are reviewed. The data on redox reactions of uranium and actinides in solutions and solid-phase transformations for the development of modern technologies for fuel reprocessing and handling of alkaline radioactive waste are discussed. The information concerning various methods for treatment of liquid radioactive waste with nanostructured sorption materials (carbon materials included) is also presented.",{"EN":636},"Nanomaterials in nuclear engineering and radioecology",{"VOID":638},"[\"5207352481991689176\"]",{"VOID":640},"A. V. Anan’ev, I. G. Tananaev, and V. P. Shilov. “Heterogeneous catalytic redox reactions in the chemistry and technology of the nuclear fuel cycle,” Russ. Chem. Rev. 74, 1039 (2005).\nI. G. Tananaev, V. P. Shilov, and N. N. Krot. “Interaction of ameritium with some reducing agents on catalysts,” Radiokhimiya 28 (1), 92–94 (1986).\nI. G. Tananaev and V. P. Shilov. “Plutonium (4) reduction by hydrazine in the presence of solid-phase catalysts in nitric acid solutions I. Platinum on silica gel,” Radiokhimiya 31 (6), 52–55 (1989).\nI. G. Tananaev, V. I. Dzyubenko, and V. P. Shilov. “Plutonium (4) reduction by hydrazine in the presence of solid-phase catalysts in nitric acid solutions II. Ruthenium on silica gel,” Radiokhimiya 31 (6), 56–59 (1989).\nI. G. Tananaev and V. P. Shilov. “Neptunium (IV) and (V) reduction by hydrazine in the presence of solidphase catalysts in nitric acid solutions,” Radiokhimiya 31 (6), 59–63 (1989).\nV. M. Korotkevich, A. I. Milovanov, N. A. Mikhailova, S. N. Kruglov, and V. S. Terovskii, “Uranyl nitrate reduction on platinum catalyst,” in Proceedings of the 1st Russian Conference on Radiochemistry, Dubna, May 17–19, 1994, p. 202.\nI. G. Tananaev and A. M. Fedoseev. “Sorbtion separation of neptunium and plutonium using anion exchangers catalysts based on heteropolycompounds,” Radiokhimiya 36 (5), 422–425 (1994).\nI. G. Tananaev and A. M. Fedoseev. “Heteropolycompounds as solid phase catalysts in processes of actinide ion reduction with hydrazine in HNO3 solution,” Radiokhimiya 37 (1), 28–31 (1995).\nI. G. Tananaev, V. P. Shilov, V. A. Matyukha, V. I. Dzyubenko, and N. N. Krot. “Sorbtion separation of neptunium and plutonium using anion exchangers-catalysts,” Radiokhimiya 36 (4), 329–332 (1994).\nV. I. Dzyubenko, I. G. Tananaev, V. P. Shilov, V. A. Matyukha, and N. N. Krot, “Sorbtion separation of neptunium and plutonium using anion exchangerscatalysts,” in Proceedings of the 1st All-Russia Conference on Radiochemistry, Dubna, May 17–19, 1994, p. 174.\nN. N. Krot, V. P. Shilov, V. I. Dzyubenko, V. A. Matyukha, and N. N. Malkova. “H2C2O4 decomposition in nitric acid solutions in the presence of solid-phase catalysts,” Radiokhimiya 36, 19–24 (1994).\nN. N. Krot, V. P. Shilov, T. N. Bukhtiyarova, V. A. Matyukha, V. P. Starodumov, and N. N. Malkova. “Study of stoichiometry and mechanism of H2C2O4 decomposition in nitric acid solutions in the presence of solid-phase catalysts,” Radiokhimiya 37 (1), 1–9 (1995).\nV. B. Kozlova, M. V. Logunov, I. G. Tananaev, and B. F. Myasoedov, “Development of methods for oxalic acid decomposition in the technological nitric acid solutions on PA Mayak,” in Proceedings of the 2nd Youth Scientific-Practical Conference on Nuclear-Industrial Complex of Ural: Problems and Prospects, Ozersk, Apr. 21–23, 2003, pp. 173–174.\nA. V. Ananiev, J.-C. Broudic, Ph. Brossard, and N. N. Krot. “Heterogeneous catalytic denitration of nitric acid solutions,” Radiochim. Acta 78, 145 (1997).\nA. V. Ananiev, J.-C. Broudic, and Ph. Brossard, “Method for reducing nitrate and\u002For nitric acid concentration in an aqueous solutions,” US Patent No. 6383400 (2002).\n“Development of technology for catalytic denitration of moderately active solutions in order to reduce the salt content before cementing,” Report No. TsL\u002F7385 (2005).\nA. V. Ananiev, V. P. Shilov, and Ph. Brossard. “The urea decomposition in the process of the heterogeneous catalytic denitration of nitric acid solution. Part I. Kinetics of the reaction,” Appl. Catal. B: Environ. 45, 189–196 (2003).\nA. V. Ananiev, V. P. Shilov, and Ph. Brossard. “The urea decomposition in the process of the heterogeneous catalytic denitration of nitric acid solution. Part II. Reaction products and stoichiometry,” Appl. Catal. B: Environ. 45, 197–203 (2003).\nA. V. Ananiev, V. P. Shilov, and Ph. Brossard. “Kinetics of the platinum catalyzed hydrazoic acid decomposition in acidic media,” Appl. Catal. A: Gen. 257 (2), 152–156 (2003).\nI. G. Tananaev. “Solid phase transforms of neptunium (V) compounds in alkaline, and carbonate media,” Radiokhimiya 33 (3), 15–19 (1991).\nI. G. Tananaev. “On solid phase interaction of some neptunium (V) compounds with alkalis,” Radiokhimiya 33 (3), 19–24 (1991).\nI. G. Tananaev, T. I. Potemkina, V. P. Perminov, and M. S. Grigor’ev. “On interaction of CsNpO2(NO3)3 with solid alkalis,” Radiokhimiya 33 (5), 41–46 (1991).\nL. N. Khazimullina, E. G. Galkin, A. V. Mamykin, I. G. Tananaev, V. P. Kazakov, and B. F. Myasoedov. “Mass-spectrometric study of the solid-phase reaction of Na4XeO6.8H2O with U(SO4)2.4H2O,” Mendeleev Commun. 17, 18–19 (2007).\nL. N. Hazimullina, V. A. Antipin, A. V. Mamykin, I.G. Tananaev, V. P. Kazakov, and V. P. Myasoedov. “Chemiluminescence in the Solid-Phase Reaction of Powdered XeF2 and Na4XeO6nH2O with U(OH)4nH2O,” Radiochemistry 49, 41 (2007).\nV. P. Kazakov, I. G. Tananaev, and B. F. Myasoedov, “Chemiluminescence of uranium and transuranium elements,” in Proceedings of the 18th Mendeleev Congress on General and Applied Chemistry, Section 12: International Conference on Modern Radiochemistry- 2007, Russia, Moscow, 2007, Vol. 5, p. 2408.\nL. N. Hazimullina, V. A. Antipin, A. V. Mamykin, I. G. Tananaev, V. P. Kazakov, and B. F. Myasoedov, “Chemiluminescence observed during solid-state interactions of Na4XeO6 and U(SO4)2.4H2O,” in Recent Advances in Actinide Science, Ed. by R. Alvarez, N. D. Bryan, and I. May (RSC, Thomas Graham House, Cambridge, UK, 2006), pp. 752–755.\nV. F. Peretroukchin, V. I. Silin, I. G. Tananaev, A. V. Kareta, and V. E. Trushina, “Decontamination of alkaline solutions from Tc and other fision products and from some actinides by reductive copricipitation and sorption of metals,” Report PNNL-11626 (Richland, USA, 1997), pp. 1–68.\nN. A. Boudantseva, A. M. Fedosseev, I. G. Tananaev, A. A. Bessonov, and C. L. Delegard. “Capture of Pu (V), Np (V) and Pu (VI) from alkaline solutions by hydroxides of Pu (VI), Th (IV) and La (III),” J. Alloys Compd. 271–273, 231–235 (1998).\nI. G. Tananaev and B. F. Myasoedov, “Successes achieved and perspectives on actinides alkaline chemistry,” in Proceedings of the US\u002FRussia Workshop on Actinides Science Relevant to Environment, Radioactive Waste Management and Migration Behavior of Actinides and Fission Products in Geosphere, Moscow, May 16–17, 2000, p. 13.\nI. G. Tananaev, V. I. Silin, A. V. Kareta, V. E. Trushina, and V. P. Peretroukhin, “Decontamination of alkaline solutions from technetium and other fission products and from some actinides by reductive copricipitation and sorption on metals,” Report PNNL-11624 (Pacific Northwest National Laboratory Richland, USA, 1997).\nS. Iijima, Nature 354, 56–58 (1991).\nR. Tenne, M. Homyonfer, and Y. Feldman, Chem. Mater. 10, 3225–3238 (1998).\nW. Tremel, Angew. Chem. Int. Ed. 38, 2175–2179 (1999).\nR. Tenne, Chem. Eur. J. 8, 5297–5304 (2002).\nG. R. Patzke, F. Krumeich, and R. Nesper, Angew. Chem. Int. Ed. 41, 2446–2461 (2002).\nR. Tenne, Angew. Chem. Int. Ed. 42, 5124–5132 (2003).\nE. G. Rakov, S. V. Khaustov, and S. A. Pomadchin, Russ. J. Inorg. Chem.} 44, 1646 (1997).\nA. L. Ivanovskii, Russ. Chem. Rev. 71, 175 (2002).\nS. V. Krivovichev, V. Kahlenberg, R. Kaindl, E. Mersdorf, I. G. Tananaev, and B. F. Myasoedov, Angew. Chem. Intern. Ed. 44, 1134–1136 (2005).\nS. V. Krivovichev, V. Kahlenberg, I. G. Tananaev, R. Kaindl, E. Mersdorf, and B. F. Myasoedov, J. Am. Chem. Soc. 127, 1072–1073 (2005).\nS. V. Krivovichev, I. G. Tananaev, V. Kahlenberg, R. Kaindl, and B. F. Myasoedov, Radiochemistry 47, 525 (2005).\nS. V. Krivovichev, V. Kahlenberg, I. G. Tananaev, and B. F. Myasoedov. “Uranyl selenates: from finite clusters to nanotubes,” Acta Crystallogr. (Suppl.) A61, C15 (2005).\nS. V. Krivovichev, P. C. Burns, I. G. Tananaev, and B. F. Myasoedov, “Nanostructured actinide compounds: an introduction,” in Structural Chemistry of Inorganic Actinide Compounds, Ed. by S. V. Krivovichev, P. C. Burns, and I. G. Tananaev (Elsevier, Nåtherlands, 2007), Chap. 12, pp. 443–457.\nS. V. Krivovichev, E. V. Alekseev, W. Depmeier, I. G. Tananaev, and B. F. Myasoedov, “New perspectives on microporous and nanotubular uranium compounds,” in Proceedings of the 18th Mendeleev Congress on General and Applied Chemistry, Section 12 International Conference on Modern Radiochemistry-2007, Moscow, Russia, 2007, Vol. 5, p. 2373.\nS. V. Krivovichev, V. Kahlenberg, I. G. Tananaev, and B. F. Myasoedov. “Amine-templated uranium selenates with layered structures. I. Structural diversity of sheets with a U: Se ratio of 1:2,” Z. Anorg. Allg. Chem. 631, 2358–2364 (2005).\nS. V. Krivovichev and I. G. Tananaev. “Uranium oxide nanotubulenes as potential matrix for the radionuclide immobilization,” Zh. Ross. Khim. Obshch. Mendeleeva 49 (2), 115–119 (2005).\nS. V. Krivovichev, I. G. Tananaev, and B. F. Myasoedov, “Organic\u002Finorganic uranyl-based nanocomposites. Structural chemistry of partially ordered systems, nanoparticles and nanocomposites, in Proceedings of the Topical Meeting of the European Ceramic Society, June 27–29, 2006, St.-Petersburg, Russia, p. 12.\nS. V. Krivovichev, P. C. Burns, I. G. Tananaev, and B. F. Myasoedov, “Nanostructured actinide compounds,” J. Alloys Comp. 444–445, 457–463 (2007).\nA. G. Krivitsky, I. V. Manakov, A. I. Bobilev, S. I. Rovny, and I. G. Tananaev, “Synthesis and study of the properties of new promising material, superdispersed uranium dioxide, for MOX-fuel fabrication,” in Proceedings of the 18th Mendeleev Congress on General and Applied Chemistry, Section 12 International Conference on Modern Radiochemistry-2007, Moscow, Russia, 2007, Vol. 5, p. 2423.\nA. G. Krivitsky, I. V. Manakov, A. I. Bobilev, S. I. Rovny, and I. G. Tananaev, “Synthesis and study of the properties of superdispersed uranium dioxide UO2 for MOX-fuel fabrication,” in Proceedings of the Topic Meeting of the Europian Ceramic Society on Geometry, Information and Theoretical Crystallography of the Nanoworld, July 30–August 3, 2007 (Inst. Silicate Chemistry RAS, St.-Peterburg, Russia, 2007), pp. 78–80.\nS. A. Kulyukhin, L. V. Mizina, and I. A. Rumer, “Study of termodistraction of CH3l–131 in gazeous stream,” in Proceedings of the All–Russian Conference on Radiochemistry, Dimitrograd, October 15–19, 2012, p. 244.\nG. V. Kolesnikov, E. N. Mishkovskaya N. V. Boev, Yu. A. Ustynyuk, E. A. Kataev, and I. G. Tananaev, “Hybrid macrocycles as effective receptors for perrhenate and pertecnetate anions,” in Proceedings of the 18th Mendeleev Congress on General and Applied Chemistry, Section 12 International Conference on Modern Radiochemistry-2007, Moscow, Russia, 2007, Vol. 5, p. 2413.\nE. A. Kataev, N. V. Boev, E. N. Mishkovskaya, G. V. Kolesnikov, J. L. Sessler, I. G. Tananaev, and Yu. A. Ustynyuk, “Oligopyrrole based artificial receptors for oxoanions,” in Proceedings of the 18th Mendeleev Congress on General and Applied Chemistry, Section 12 International Conference on Modern Radiochemistry- 2007, Moscow, Russia, 2007, Vol. 5, p. 2163.\nE. A. Kataev, P. Melfi, N. V. Boev, G. V. Kolesnikov, I. G. Tananaev, and J. L. Sessler, “Binding of perhenate and pertechnetete anions by bipyrrole based reception,” in Proceedings of the 2nd International Symposium on Mcrocyclic and Supramolecular Chemistry, Salice Terme, Pavia, Italy, June 24–28, 2007, PSA 85.\nE. K. Katayev, N. V. Boev, V. N. Khrustalev, Y. A. Ustynyuk, I. G. Tananaev, and J. L. Sessler. “Bipyrrole- and dipyrromethane-based amido-imine hybrid macrocycles. New receptors for oxoanions,” J. Org. Chem. 72, 2886–2896 (2007).\nO. B. Mokhodoeva, G. V. Myasoedova, I. V. Kubrakova, A. V. Nikulin, O. I. Artyushin, and I. L. Odinets. “New solid extractants for preconcentrating noble metals,” Russ. J. Anal. Chem. 65, 12 (2010).\nO. B. Mokhodoeva, D. A. Malikov, N. P. Molochnikova, E. A. Zakharchenko, S. A. Perevalov, G. V.Myasoedova, S. V. Mishchenko, Yu. M. Kulyako, and B. F. Myasoedov. “Carbon nanotubes: using possibility for the concentration of radionuclides,” Zh. Ross. Khim. Obshch. Mendeleeva 54 (3), 61 (2010).\nI. L. Odinets, E. V. Sharova, O. I. Artyshin, K. A. Lyssenko, Y. V. Nelyubina, G. V. Myasoedova, N. P. Molochnikova, and E. A. Zakharchenro. “Novel class of functionalized ionic liquids with grafted CMPO-moieties for actinides and rare-earth elements recovery,” Dalton Trans. 39, 4170 (2010).\nT. S. Volkova, I. G. Tananaev, V. S. Volkov, and O. M. Slyunchev. “Removal of radionuclides from spent technical oils,” Radiochemistry 55, 129 (2013).\nT. S. Volkova, I. G. Tananaev, V. S. Volkov, and O. M. Slyunchev. “Chemical endurance of polymeric compounds containing radioactively contaminated spent vacuum oil,” Radiochemistry 55, 450 (2013).\nA. B. Sazonov, Aung Dzho Tkhun, E. P. Magamedbekov, A. V. Ponomarev, I. G. Tananaev, and B. F. Myasoedov. “Carbon sorbents for immobilization of tritiumcontaining waste oils,” Ross. Khim. Zh. 54 (3), 94–100 (2010).\nT. S. Volkova and I. G. Tananaev. “The specific surface area as a parameter that affects the absorption capacity of the material to organic,” Radiat Saf., No. 1, 29–36 (2015).\nA. Yu. Romanchuk, A. Slesarev, D. V. Kosynkin, and S. N. Kalmykov. “Graphene oxide for effective radionuclide removal,” Phys. Chem. Chem. Phys. 15, 2321–2327 (2013).",{"VOID":642},"10.1134\u002FS1995078016010158","2024-05-10T20:29:56.963+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078016010158",[646,661,674],{"id":647,"sortIndex":21,"researcher":20,"roles":648,"affiliations":649,"properties":658,"displayName":660,"givenName":20,"familyName":20},"d3185868-a1cc-4b80-a39e-404d8833acbf",[125],[650],{"id":651,"sortIndex":21,"affiliation":652,"properties":20},"1723c11e-c4b1-4646-a912-08ef308546f8",{"id":651,"createTime":20,"updateTime":20,"relativeEntities":653,"slug":20,"properties":654,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":657,"statistic":20},[],{"title":655},{"VI":656},"Far Eastern Federal University, Vladivostok, Russia",[],{"title":659},{"VI":660},"I. G. Tananaev",{"id":662,"sortIndex":140,"researcher":20,"roles":663,"affiliations":664,"properties":671,"displayName":673,"givenName":20,"familyName":20},"9f6939bc-b607-40ff-81dd-4e24ca916ff4",[125],[665],{"id":651,"sortIndex":21,"affiliation":666,"properties":20},{"id":651,"createTime":20,"updateTime":20,"relativeEntities":667,"slug":20,"properties":668,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":670,"statistic":20},[],{"title":669},{"VI":656},[],{"title":672},{"VI":673},"G. A. Sarychev",{"id":675,"sortIndex":52,"researcher":20,"roles":676,"affiliations":677,"properties":684,"displayName":686,"givenName":20,"familyName":20},"e46546eb-2523-4541-aaba-293f3250111e",[125],[678],{"id":651,"sortIndex":21,"affiliation":679,"properties":20},{"id":651,"createTime":20,"updateTime":20,"relativeEntities":680,"slug":20,"properties":681,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":683,"statistic":20},[],{"title":682},{"VI":656},[],{"title":685},{"VI":686},"B. F. Myasoedov",{"url":644,"publisher":688,"properties":708},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":689,"slug":10,"properties":690,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":694,"manageAffiliations":695,"indexDatabases":696,"url":20,"thumbnailPath":20,"statistic":703,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":691,"title":692,"eissn":693},{"VOID":13},{"EN":15},{"VOID":17},[],[],[697],{"id":26,"indexDatabase":698,"url":37,"indexYears":38,"academicFieldIds":20,"indexDatabaseRanking":39},{"id":28,"createTime":20,"updateTime":20,"relativeEntities":699,"label":700,"description":701,"key":34,"publicationTags":702,"standard":20},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"impactFactor":21,"impactFactorByYear":704,"i10Index":53,"i10IndexLast5Year":52,"totalPublication":54,"totalPublicationByYear":705,"totalCitation":66,"totalCitationByYear":706,"totalCitationPerPublication":81,"totalCitationPerPublicationByYear":707,"hindexLast5Year":94,"hindex":94},{"2012":42,"2013":43,"2014":44,"2015":45,"2016":46,"2017":47,"2018":48,"2019":49,"2020":50,"2021":51,"2022":52},{"2008":56,"2009":57,"2010":58,"2011":56,"2012":59,"2013":60,"2014":61,"2015":56,"2016":62,"2017":57,"2018":63,"2019":64,"2020":65},{"2008":68,"2009":69,"2010":70,"2011":71,"2012":72,"2013":73,"2014":74,"2015":75,"2016":76,"2017":77,"2018":78,"2019":79,"2020":80},{"2008":83,"2009":84,"2010":85,"2011":86,"2012":56,"2013":87,"2014":64,"2015":88,"2016":89,"2017":90,"2018":91,"2019":92,"2020":93},{"pages":709,"volume":711},{"VOID":710},"63-72",{"VOID":712},"11",{"total":169,"publishYear":714,"statisticByYear":715},2016,{"2018":140,"2021":52},"2016-03-24",[39],{"id":719,"createTime":720,"updateTime":721,"relativeEntities":722,"slug":723,"properties":724,"entityType":116,"verifyStatus":117,"verifyTime":735,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":736,"fullTextUrl":20,"authors":737,"publicationType":212,"publisherRelationship":871,"citationCount":20,"citationInfo":20,"publishDate":897,"publishYear":898,"citationAnalyzeStatus":899,"lastCitationAnalyze":721,"indexDatabases":900,"openAccess":20,"references":20,"isForceReanalyzing":245},"11f217f6-76db-49fc-8114-6ca6e0477cd9","2023-12-19T09:29:00.307+00:00","2026-05-20T11:02:23.536+00:00",[],"Controlling-the-self-assemblage-of-modified-colloid-particle-ensembles-in-solution-microdroplets",{"abstract":725,"title":727,"gsPaper":729,"references":731,"doi":733},{"EN":726},"Sorbtion isoterms and binding constants of styryl dyes (SDs) of pyridine line with active centers on the surface of polystyrene colloid particles in aqueous solutions were investigated depending on their dye charge: dication of N-ammoniopropyl SD derivative, cation of N-ethyl SD derivative, and neutral N-sulfopropyl SD derivative; a physical model of the sorbtion was developed. Self-assemblage of the particle ensembles, the surface of which is modified by SDs (namely, the dependence that the solid-phase morphology has on the dye concentration), was studied. It was shown that a solid phase is formed in the presence of sorbed dye more uniformly coating the substrate, but with a less expressed long-range order of the particle location. The dependence that particle ordering has on the distance from the drop center, which is expressed in the presence of the radial gradient of the optical properties of the microconstruction obtained, was found.",{"EN":728},"Controlling the self-assemblage of modified colloid particle ensembles in solution microdroplets",{"VOID":730},"[]",{"VOID":732},"G. G. Guilbault, Practical Fluorescence (Marcel Dekker, New York, 1990).\nA. V. Yakimansky, A. Yu. Menshikova, N. N. Shevchenko, B. M. Shabsels, A. G. Bazhenova, A. V. Sel’kin, S. K. Sazonov, A. I. Vedernikov, S. P. Gromov, V. A. Sazhnikov, and M. V. Alfimov, Polym. Adv. Technol. 20, 581–588 (2009).\nMacrocyclic Compounds in Analytical Chemistry, Ed. by Yu. A. Zolotov (Wiley, New York, 1997).\nM. V. Alfimov and S. P. Gromov, in Applied Fluorescence in Chemistry, Biology, and Medicine, Ed. by W. Rettig, B. Strehmel, S. Schrader, and H. Seifert (Springer-Verlag, Berlin, 1999).\nB. M. Krasnovskii and B. M. Boilotin, Organic Luminescence Materials (VCH, Weinheim, 1988).\nL. V. Eroshenko, P. V. Lebedev-Stepanov, S. P. Molchanov, S. P. Gromov, S. K. Sazonov, N. N. Shevchenko, A. Yu. Men’shikova, and M. V. Alfimov, Nanotechnol. Russia 5, 771 (2010).\nA. I. Vedernikov, S. K. Sazonov, P. S. Loginov, N. A. Lobova, M. V. Alfimov, and S. P. Gromov, Mendeleev Commun. 17, 29–31 (2007).\nA. I. Vedernikov, L. G. Kuz’mina, S. K. Sazonov, N. A. Lobova, P. S. Loginov, A. V. Churakov, Yu. A. Strelenko, J. A. K. Hovard, M. V. Alfimov, and S. P. Gromov, Russ. Chem. Bull. 56, 1860–1883 (2007).\nS. P. Gromov, A. I. Vedernikov, L. G. Kuz’mina, D. V. Kondratuk, S. K. Sazonov, Y. A. Strelenko, M. V. Alfimov, and J. A. K. Howard, Eur. J. Org. Chem., No. 13, 2587–2599 (2010).\nYu. Yu. Tarasevich, “Mechanisms and Models of the Dehydration Self-Organization in Biological Fluids,” Phys. Usp. 47, 717 (2004).\nR. Deegan, O. Bakajin, T. Dupont, et al., Nature 389, 827–829 (1997).\nP. V. Lebedev-Stepanov, R. M. Kadushnikov, S. P. Molchanov, N. I. Rubin, N. A. Shturkin, and M. V. Alfimov, Nanotechnol. Russia 6, 88 (2011).\nN. A. Fuchs, The Mechanics of Aerosols (Pergamon, London, 1964; Akad. Nauk SSSR, Moscow, 1955).\nA. Yu. Men’shikova, A. Yu. Bilibin, N. N. Shevchenko, B. M. Shabsel’s, T. G. Evseeva, A. G. Bazhenova, and A. V. Sel’kin, Polymer Sci., Ser. A 48, 910 (2006).",{"VOID":734},"10.1134\u002FS1995078011050119","2024-06-24T03:18:06.016+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078011050119",[738,753,766,779,792,805,818,831,846,858],{"id":739,"sortIndex":21,"researcher":20,"roles":740,"affiliations":741,"properties":750,"displayName":752,"givenName":20,"familyName":20},"baa7763e-8952-4e31-b7b5-582d09568c03",[125],[742],{"id":743,"sortIndex":21,"affiliation":744,"properties":20},"3e632579-c413-4ab4-80ad-9c55edd9e49a",{"id":743,"createTime":20,"updateTime":20,"relativeEntities":745,"slug":20,"properties":746,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":749,"statistic":20},[],{"title":747},{"EN":748},"Photochemistry Center, Russian Academy of Sciences, Moscow, Russia",[],{"title":751},{"VI":752},"P. V. Lebedev-Stepanov",{"id":754,"sortIndex":140,"researcher":20,"roles":755,"affiliations":756,"properties":763,"displayName":765,"givenName":20,"familyName":20},"cf996a8d-48df-48c4-aaf4-b9c321b608cd",[125],[757],{"id":743,"sortIndex":21,"affiliation":758,"properties":20},{"id":743,"createTime":20,"updateTime":20,"relativeEntities":759,"slug":20,"properties":760,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":762,"statistic":20},[],{"title":761},{"EN":748},[],{"title":764},{"VI":765},"S. P. Gromov",{"id":767,"sortIndex":52,"researcher":20,"roles":768,"affiliations":769,"properties":776,"displayName":778,"givenName":20,"familyName":20},"3825777f-0be3-4cdc-abbd-01935047b12a",[125],[770],{"id":743,"sortIndex":21,"affiliation":771,"properties":20},{"id":743,"createTime":20,"updateTime":20,"relativeEntities":772,"slug":20,"properties":773,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":775,"statistic":20},[],{"title":774},{"EN":748},[],{"title":777},{"VI":778},"S. P. Molchanov",{"id":780,"sortIndex":169,"researcher":20,"roles":781,"affiliations":782,"properties":789,"displayName":791,"givenName":20,"familyName":20},"2fd2b9c1-d0b6-4afe-86da-be2472f4a4bf",[125],[783],{"id":743,"sortIndex":21,"affiliation":784,"properties":20},{"id":743,"createTime":20,"updateTime":20,"relativeEntities":785,"slug":20,"properties":786,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":788,"statistic":20},[],{"title":787},{"EN":748},[],{"title":790},{"VI":791},"N. A. Chernyshov",{"id":793,"sortIndex":89,"researcher":20,"roles":794,"affiliations":795,"properties":802,"displayName":804,"givenName":20,"familyName":20},"57948d42-ea01-4308-9c4f-1541e56d8090",[125],[796],{"id":743,"sortIndex":21,"affiliation":797,"properties":20},{"id":743,"createTime":20,"updateTime":20,"relativeEntities":798,"slug":20,"properties":799,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":801,"statistic":20},[],{"title":800},{"EN":748},[],{"title":803},{"VI":804},"I. S. 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Nicolis and I. Prigogine, Self-Organization in Nonequilibrium Systems: From Dissipative Structures to Order through Fluctuations (Wiley, New York, 1977; Mir, Moscow, 1979).",{},{"id":20,"text":1268,"url":20,"identifiers":1269},"S. John, “Strong Localization of Photons in Certain Disordered Dielectric Superlattices,” Phys. Rev. Lett. 58, 2486–2489 (1987).",{"doi":1270},"10.1103\u002FPhysRevLett.58.2486",{"id":20,"text":1272,"url":20,"identifiers":1273},"S. V. Frolov, Z. V. Vardeny, A. A. Zakhidov, and R. H. Baughman, “Laser-Like Emission in Opal Photonic Crystals,” Opt. Commun. 162(4), 241–246 (1999).",{"doi":1274},"10.1016\u002FS0030-4018(99)00089-9",{"id":20,"text":1276,"url":20,"identifiers":1277},"M. Lonçar, T. Yoshie, A. Scherer, P. Gogna, and Y. Qiu, “Low-Threshold Photonic Crystal Laser,” Appl. Phys. Lett. 81(15), 2680–2682 (2002).",{"doi":1278},"10.1063\u002F1.1511538",{"id":20,"text":1280,"url":20,"identifiers":1281},"J. D. Joannopoulos, P. R. Villeneuve, and S. 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Rossi, “abrication of Functional Nano-Patterned Surfaces by a Combination of Plasma Processes and Electron-Beam Lithography,” Nanotechnology 18, 135 303 (2007).",{"doi":1297},"10.1088\u002F0957-4484\u002F18\u002F13\u002F135303",{"id":20,"text":1299,"url":20,"identifiers":1300},"Yu. A. Vlasov, X.-Z. Bo, J. C. Sturm, and D. J. Norris, “On-Chip Natural Assembly of Silicon Photonic Bandgap Crystals,” Nature (London) 414, 289–293 (2001).",{"doi":1301},"10.1038\u002F35104529",{"id":20,"text":1303,"url":20,"identifiers":1304},"S. P. Molchanov, P. V. Lebedev-Stepanov, S. O. Klimonskii, K. F. Sheberstov, S. Yu. Tret’yakov, and M. V. Alfimov, “Self-Assembly of Ordered Layers of Silicon Dioxide Microspheres on a Vertical Plate,” Ross. Nanotekhnol. (in press) [Nanotechnol. Russ. (in press)].",{},{"id":20,"text":1306,"url":20,"identifiers":1307},"A. Yu. Men’shikova, A. Yu. Bilibin, N. N. Shevchenko, B. M. Shabsel’s, T. G. Evseeva, A. G. Bazhenova, and A. V. 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Fuchs, The Mechanics of Aerosols (Academy of Sciences of the Soviet, Moscow, 1955; Pergamon, Oxford, 1964).",{},{"id":1327,"createTime":1328,"updateTime":1329,"relativeEntities":1330,"slug":1331,"properties":1332,"entityType":116,"verifyStatus":117,"verifyTime":1341,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1342,"fullTextUrl":20,"authors":1343,"publicationType":212,"publisherRelationship":1372,"citationCount":20,"citationInfo":20,"publishDate":1397,"publishYear":898,"citationAnalyzeStatus":19,"lastCitationAnalyze":1329,"indexDatabases":1398,"openAccess":20,"references":1399,"isForceReanalyzing":245},"9c1ff057-2cb0-4eee-8018-f6ab662156f1","2024-01-10T22:30:04.086+00:00","2026-04-14T12:50:03.514+00:00",[],"Ultraviolet-spectroscopy-study-of-empty-electron-states-of-Cu-nanoclusters",{"abstract":1333,"title":1335,"gsPaper":1337,"doi":1339},{"EN":1334},"Empty image-potential electron states for Cu nanoclusters on SiO2 have been observed using ultraviolet (UV) light in the energy region of 3.1 eV–6.5 eV. Cu nanoclusters have been formed on the silicon oxide surface, and their size was about 500 nm. In addition to the photoelectron emission from the occupied Shockley surface state, other features have been found in the UV electron spectra. These features are attributed to the direct transition into the image potential states n = 1and 2 from the Shockley surface state and then to the escape from these states into vacuum.",{"EN":1336},"Ultraviolet spectroscopy study of empty electron states of Cu nanoclusters",{"VOID":1338},"[\"3608460405257685407\"]",{"VOID":1340},"10.1134\u002FS1995078011020157","2024-04-27T08:49:11.647+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078011020157",[1344,1359],{"id":1345,"sortIndex":21,"researcher":20,"roles":1346,"affiliations":1347,"properties":1356,"displayName":1358,"givenName":20,"familyName":20},"9a7fb275-571f-4fa1-88ba-7748f86bb83e",[125],[1348],{"id":1349,"sortIndex":21,"affiliation":1350,"properties":20},"161b60e0-f3be-4593-a59f-59664cb59e82",{"id":1349,"createTime":20,"updateTime":20,"relativeEntities":1351,"slug":20,"properties":1352,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1355,"statistic":20},[],{"title":1353},{"VI":1354},"Ioffe Physicotechnical Institute, Russian Academy of Sciences, St. Petersburg, Russia",[],{"title":1357},{"VI":1358},"N. 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Matter 57, 12 812–12 824 (1998)",{"doi":1031},{"id":1027,"text":1425,"url":1029,"identifiers":1426},"K. Giesen, F. Hage, F. J. Himpsel, H. J. Riess, and W. Steinmann, “Two-Photon Photoemission via Image-Potential States,” Phys. Rev. Lett. 55, 300–303 (1985).",{"doi":1031},{"id":1027,"text":1428,"url":1029,"identifiers":1429},"P. D. Jonson and N. V. Smith, “Image-Potential States and Energy-Loss Satellites in Inverse Photoemission Spectra,” Phys. Rev. B: Condens. Matter 27, 2527–2530 (1983).",{"doi":1031},{"id":1027,"text":1431,"url":1029,"identifiers":1432},"Ch. Pettenkofer and A. Otto, “Strong Subthreshold Photoemission from Ag(111) Islands,” Europhys. Lett. 65 (5), 692–698 (2004).",{"doi":1031},{"id":20,"text":1434,"url":20,"identifiers":1435},"V. S. Fomenko, Emission Properties of Materials (Naukova Dumka, Kiev, 1981) [in Russian].",{},{"id":1027,"text":1437,"url":1029,"identifiers":1438},"V. Shiraki and A. 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Fritsche, and J. Noffke, “Self-Consistent Relativistic Band Structure of the Noble Metals,” J. Phys. F: Met. Phys. 14, 97–112 (1984).",{"doi":1031},{"id":1027,"text":1464,"url":1029,"identifiers":1465},"E. Knoesel and T. Hertel, “Ultrafast Dynamics of Electrons in Image-Potential States on Clean and Xe-Covered Cu(111),” Phys. Rev. B: Condens. Matter 54, R5295–R5298 (1996).",{"doi":1031},{"id":1027,"text":1467,"url":1029,"identifiers":1468},"T. Yasue, T. Koshikawa, M. Jalochowski, and E. Bauer, “LEEM Observation of Formation of Cu Nano-Islands on Si(1 1 1) Surface by Hydrogen Termination,” Surf. Sci. 493, 381–388 (2001).",{"doi":1031},{"id":1027,"text":1470,"url":1029,"identifiers":1471},"M. R. Baklanov, D. G. Shamiryan, Zs. Tokel, G. P. Beyer, T. Conard, and M. K. Vanhaelemeersch, “Characterization of Cu Surface Cleaning by Hydrogen Plasma,” J. Vac. Sci. Technol., B: Microelectron. Nanometer Struct.-Process., Meas., Phenom. 19(4), 1201 (2001).",{"doi":1031},{"id":1027,"text":1473,"url":1029,"identifiers":1474},"H. Liu, Y. P. Zhao, G. Ramanath, S. P. Murarka, and G. C. Wang, “Thickness Dependent Electrical Resistivity of Ultrathin (\u003C40 nm) Cu Films,” Thin Solid Films 384, 151–156 (2001).",{"doi":1031},{"id":1476,"createTime":1477,"updateTime":1478,"relativeEntities":1479,"slug":1480,"properties":1481,"entityType":116,"verifyStatus":117,"verifyTime":1491,"verifyNote":119,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1492,"fullTextUrl":20,"authors":1493,"publicationType":212,"publisherRelationship":1563,"citationCount":20,"citationInfo":20,"publishDate":1588,"publishYear":714,"citationAnalyzeStatus":899,"lastCitationAnalyze":1589,"indexDatabases":1590,"openAccess":20,"references":20,"isForceReanalyzing":245},"fbe46c86-9e0d-4733-80d9-235f65b9622e","2024-02-12T06:36:02.072+00:00","2026-02-26T18:05:43.073+00:00",[],"Effect-of-CO-atmosphere-on-morphology-and-electrochemically-active-surface-area-in-the-synthesis-of-Pt-C-and-PtAg-C-electrocatalysts",{"abstract":1482,"title":1484,"gsPaper":1486,"references":1487,"doi":1489},{"EN":1483},"An effect of CO atmosphere on the microstructure of Pt\u002FC, PtAg\u002FC, and Ag@Pt\u002FC electrocatalysts formed in the synthesis and on the electrochemically active surface area (ECAS) has been studied. Synthesis is carried out via the joint or sequential chemical reduction of silver and platinum precursors in a suspension of Vulcan XC-72 disperse carbon carrier. Adsorption of CO molecules on a surface of platinum and Pt-Ag is shown to hamper their growth and aggregation, leading to a considerable increase in ECAS of platinum, as well as Pt\u002FC and PtAg\u002FC materials to be synthesized. The impact of CO on the morphological characteristics of the Ag@Pt\u002FC materials containing a significant proportion of bimetallic nanoparticles (NPs) with an Ag-core\u002FPt-shell structure is less because of the weak adsorption of CO on the silver surface. ECAS values of platinum in the materials synthesized in the CO atmosphere were 152, 88, and 75 m2\u002Fg for Pt\u002FC, PtAg\u002FC, and Ag@Pt\u002FC materials, respectively.",{"EN":1485},"Effect of CO atmosphere on morphology and electrochemically active surface area in the synthesis of Pt\u002FC and PtAg\u002FC electrocatalysts",{"VOID":730},{"VOID":1488},"A. B. Yaroslavtsev, Yu. A. Dobrovolsky, N. S. Shaglaeva, L. A. Frolova, E. V. Gerasimova, and E. A. Sanginov, “Nanostructured materials for low-temperature fuel cells,” Russ. Chem. Rev. 81, 191 (2012).\nD. Thompsett, “Catalysts for the proton exchange membrane fuel cell,” in Handbook of Fuel Cells. Fundamentals, Technology and Applications, Ed. by W. Vielstich, A. Lamm, and H. A. Gasteiger (Wiley, New York, 2003), Vol. 3, p. 6.\nE. Antolini, “Carbon supports for low-temperature fuel cell catalysts,” Appl. Catal. B: Environ. 88, 1 (2009).\nM. Kim, J. Park, H. Kim, S. Song, and W-H. Lee, “The preparation of Pt\u002FC catalysts using various carbon materials for the cathode of PEMFC,” J. Power Sources 163, 93 (2006).\nM. N. Shaddad, A. M. Al-Mayouf, M. A. Ghanem, M. S. AlHoshan, and J. P. Singh, “Chemical deposition and electrocatalytic activity of platinum nanoparticles supported on TiO2 nanotubes,” Int. J. Electrochem. Sci. 8, 2468–2478 (2013).\nA. Manasilp and E. Gulari, “Selective CO oxidation over Pt\u002FAlumina catalysts for fuel cell applications,” Appl. Catal. B: Environ. 37, 17 (2002).\nO. Lihui, “The origin of enhanced electrocatalytic activity of Pt–M (M = Fe, Co, Ni, Cu, and W) alloys in PEM fuel cell cathodes: a DFT computational study,” Comput. Theor. Chem. 1048, 69 (2014).\nA. V. Guterman, E. B. Pakhomova, V. E. Guterman, Yu. V. Kabirov, and V. P. Grigor’ev, “Synthesis of nanostructured PtxNi\u002FC and PtxCo\u002FC catalysts and their activity in the reaction of oxygen electroreduction,” Inorg. Mater. 45, 767 (2009).\nV. M. Andoralov, M. R. Tarasevich, S. V. Kuznetsov, and V. A. Bogdanovskaya, “Electrochemical characteristics of PdCoPt\u002FC catalysts synthesized under different conditions,” Russ. J. Electrochem. 46, 941 (2010).\nD. J. You, K. Kwon, S. H. Joo, J. H. Kimd, and J. M. Kim, “Carbon-supported ultra-high loading pt nanoparticle catalyst by controlled overgrowth of Pt: improvement of Pt utilization leads to enhanced direct methanol fuel cell performance,” Int. J. Hydrogen Energy 37, 6880 (2012).\nV. E. Guterman, T. A. Lastovina, S. V. Belenov, N. Yu. Tabachkova, V. G. Vlasenko, I. I. Khodos, and E. N. Balakshina, “PtM\u002FC (M=Ni, Cu, or Ag) electrocatalysts: effects of alloying components on morphology and electrochemically active surface areas,” J. Solid State Electrochem. 18, 1307–1317 (2014).\nH.-M. Chen, R.-Sh. Liu, M.-Yi. Lo, S.-Ch. Chang, and Li-D. Tsai, “Hollow platinum spheres with nanochannels: synthesis and enhanced catalysis for oxygen reduction,” J. Phys. Chem. C 112 (20), 7522 (2008).\nH. 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Electrochem. 47, 933 (2011).",{"VOID":1490},"10.1134\u002FS1995078016030095","2024-05-12T20:05:26.689+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1995078016030095",[1494,1509,1522,1535,1548],{"id":1495,"sortIndex":21,"researcher":20,"roles":1496,"affiliations":1497,"properties":1506,"displayName":1508,"givenName":20,"familyName":20},"0a3c4b69-95d2-48e2-8cdb-e1ab72b0a582",[125],[1498],{"id":1499,"sortIndex":21,"affiliation":1500,"properties":20},"b21e527b-0fb0-4298-9406-1102b5d2800d",{"id":1499,"createTime":20,"updateTime":20,"relativeEntities":1501,"slug":20,"properties":1502,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1505,"statistic":20},[],{"title":1503},{"VI":1504},"Southern Federal University, Rostov-on-Don, Russia",[],{"title":1507},{"VI":1508},"S. A. 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