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W. Müller and T. T. Tsong, Field Ion Microscopy, Principles and Applications (Elsevier, New York, 1969).\nSee, for example, J. A. Panitz, CRC Crit. Rev. Solid State Sci. 5, 153 (1975); Meth. Exp. Phys. 22, 349 (1985).\nT. T. Tsong, Surf. Sci. Rep. 8, 127 (1988).\nSee, for examples, L. Karlsson and H. Norden, Acta Metall. 36, 13, 35 (1988); H. Norden and H-O. Andrén, Surface and Interface Anal. 12, 179 (1988).\nT. T. Tsong, S. B. McLane, and T. J. Kinkus, Rev. Sci. Instrum. 53, 1442 (1982); T. T. Tsong, Y. Liou, and S. B. McLane, Rev. Sci. Instrum. 55, 1246 (1984).\nT. T. Tsong, Surf. Sci. 81, 28 (1979); 85, 1 (1979).\nG. L. Kellogg, Phys. Rev. Lett. 55, 2168 (1985); Q. J. Gao and T. T. Tsong, Phys. Rev. Lett. 57, 452 (1986).\nT. T. Tsong and Q. J. Gao, Phys. Rev. B35, 7764 (1987).\nE. Lang, K. Müller, K. Heinz, M. A. van Hove, R. J. Koestner, and G. A. Somorjai, Surf. Sci. 127, 347 (1983).\nA. J. Melmed and R. J. Stein, Surf. Sci. 49, 645 (1975).\nH. M. Liu, T. T. Tsong, and Y. Liou, Phys. Rev. Lett. 58, 1535 (1987); T. T. Tsong, H. M. Liu, and D. L. Feng, Phys. Rev. B36, 2547 (1987).\nO. Nishikawa, Y. Tsunashima, E. Nomura, S. Horie, M. Wada, M. Shibata, T. Yoshimura, and R. Uemori, J. Vac. Sci. Technol. B1, 6 (1983); T. T. Tsong, S. C. Wang, H. F. Liu, H. Chen, and M. Ahmad, J. Vac. Sci. Technol. B1, 915 (1983).\nH. F. Liu, H. M. Liu, and T. T. Tsong, Appl. Phys. Lett. 48, 1661 (1986).\nG. L. Kellogg and S. S. Brenner, Appl. Phys. Lett. 51, 1851 (1987); A. J. Melmed, R. D. Shull, C. K. Chiang, and H. A. Fowler, Science 239, 176 (1988).\nC. L. Chen and T. T. Tsong, MRS Symposium Proc. (1988).\nG. L. Kellogg and S. S. Brenner, Appl. Phys. A48, 197 (1989).\nSee, for example, P. L. Walker, Jr. and P. A. Thrower, Chemistry and Physics of Carbon 4, 215 (1980).\nS. Ijima, Scripta Physica 14, 117 (1979).\nE. W. Müller and S.V. Krishnaswamy, Rev. Sci. Instrum. 45, 1053 (1974).\nFor analysis of silicide-metal interfaces, see T. T. Tsong, S.C. Wang, C. H. F. Liu, H. Chen, and M. Ahmad, J. Vac. Sci. Technol. B1, 915 (1983). For silicide-silicon interfaces, preliminary analysis of the PdSi2-Si interface was done by Y. Liou and T. T. Tsong (unpublished research).\nP. van der Plank and W. M. H. Sachtier, J. Catalysis 12, 35 (1968); J. H. Sinfelt, L. J. Carter, and D. C. J. Yates, J. Catalysis 24, 283 (1972); H. H. Brongersma, M. J. Sparnaay, and T. M. Buck, Surf. Sci. 71, 657 (1978).\nY. S. Ng, T. T. Tsong, and S. B. McLane, Phys. Rev. Lett. 42, 588 (1979).\nD. M. Ren and T. T. Tsong, Surf. Sci. 184, L439 (1987).\nM. Ahmad and T. T. Tsong, J. Chem. Phys. 83, 388 (1985).\nT. T. Tsong, Y. S. Ng, and A. J. Melmed, Surf. Sci. 77, L187 (1978).\nG. L. Kellogg, Appl. Surf. Sci. 11\u002F12, 186 (1982).\nT. T. Tsong, Appl. Phys. Lett. 45, 1149 (1984).\nT. T. Tsong, Phys. Rev. B30, 4946 (1984).\nW. R. Brown, R. R. Freeman, K. Raghavachari, and M. Schlatter, Science 235, 860 (1987); H. W. Kroto, J. R. Heath, S.C. O’Brien, R. F. Curl, and R. E. Smally, Nature 318, 162 (1985).\nJ. Liu and T. T. Tsong, Phys. Rev. B38, 8490 (1988).\nT. T. Tsong, J. Chem. Phys. 85, 639 (1986).\nK. Sattler, J. Muhlback, O. Echt, P. Pfau, and E. Recknagel, Phys. Rev. Lett. 47, 160 (1981).\nJ. Liu and T. T. Tsong, unpublished data.\nT. T. Tsong and Y. Liou, Phys. Rev. B32, 4340 (1985); Y. Liou and T. T. Tsong, J. Phys. 49, C6-105 (1988).\nJ. Liu and T. T. Tsong (to be published).\nJ. Liu, T. T. Tsong, and G. L. Kellogg (to be published).\nSee, for example, T. T. Tsong, Rept. Prog. Phys. 51, 759 (1988).\nG. Ehrlich and K. Stolt, Ann. Rev. Chem. 31, 603 (1980).\nT. T. Tsong and R. Casanova, Phys. Rev. B24, 3063 (1981); F. Watanabe and G. Ehrlich, Phys. Rev. Lett. 62, 1146 (1989).\nP. L. Cowan and T. T. Tsong, Surf. Sci. 67, 158 (1977).",{"EN":269},"Our recent applications of the atom-probe field ion microscope to the study of physics and chemistry of materials at the atomic level are summarized. The materials applicability of field ion microscopy has recently been extended to silicon, silicide, graphite, high Tc superconductors, and other materials. Atom-probe field ion microscopy has been used for atomic layer by atomic layer chemical analysis of surfaces in alloy and impurity segregations, for analyzing the compositional changes across metal-semiconductor interfaces, and for studying formation of cluster ions in laser stimulated field desorption. The energetics of atoms in solids and on surfaces can be studied by a direct kinetic energy analysis of field desorbed ions using a high resolution pulsed-laser time-of-flight atom-probe and by other field ion microscope measurements. The site specific binding energy of surface atoms can be measured at low temperature, where the atomic structure of the surface is still perfectly defined, to an accuracy of about 0.1 to 0.3 eV.",{"EN":271},"Atom-probe field ion microscope analysis of surfaces of materials",{"VOID":273},"10.1557\u002FJMR.1989.1549","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002FJMR.1989.1549",[279,298,311],{"id":280,"sortIndex":281,"researcher":18,"roles":282,"affiliations":284,"properties":295},"0b207511-bb20-4cb4-8ba9-e38895220025",2,[283],"AUTHOR",[285],{"id":18,"sortIndex":19,"affiliation":286,"properties":18},{"id":287,"createTime":288,"updateTime":289,"relativeEntities":290,"slug":291,"properties":292,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"9178e407-ea23-49e7-8545-311599782300","2024-01-26T06:30:11.742+00:00","2024-12-05T17:23:39.355+00:00",[],"Physics-Department-The-Pennsylvania-State-University-University-Park-USA",{"title":293},{"VI":294},"Physics Department, The Pennsylvania State University, University Park, USA",{"title":296},{"VI":297},"Jiang Liu",{"id":299,"sortIndex":300,"researcher":18,"roles":301,"affiliations":302,"properties":308},"6c4b5dd8-669e-4485-bbb5-4ac1d767401f",1,[283],[303],{"id":18,"sortIndex":19,"affiliation":304,"properties":18},{"id":287,"createTime":288,"updateTime":289,"relativeEntities":305,"slug":291,"properties":306,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":307},{"VI":294},{"title":309},{"VI":310},"Chonglin Chen",{"id":312,"sortIndex":19,"researcher":18,"roles":313,"affiliations":314,"properties":320},"08fec4ee-e3c2-443a-9ad0-819e7e442fb3",[283],[315],{"id":18,"sortIndex":19,"affiliation":316,"properties":18},{"id":287,"createTime":288,"updateTime":289,"relativeEntities":317,"slug":291,"properties":318,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":319},{"VI":294},{"title":321},{"VI":322},"Tien T. Tsong","ARTICLE",{"url":277,"publisher":325,"properties":352},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":326,"slug":10,"properties":327,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":330,"manageAffiliations":331,"indexDatabases":332,"url":18,"thumbnailPath":18,"statistic":347,"gsStatistic":18,"type":254,"analyzePriority":18},[],{"issn":328,"title":329},{"VOID":13},{"VOID":15},[],[],[333,340],{"id":80,"indexDatabase":334,"url":93,"indexYears":94,"academicFieldIds":339,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":335,"label":336,"description":337,"key":90,"publicationTags":338,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97,98,99],{"id":101,"indexDatabase":341,"url":116,"indexYears":18,"academicFieldIds":346,"indexDatabaseRanking":18},{"id":103,"createTime":104,"updateTime":105,"relativeEntities":342,"label":343,"description":344,"key":112,"publicationTags":345,"standard":18},[],{"EN":108,"VI":108},{"VI":110,"EN":111},[114,115],[118],{"impactFactor":19,"impactFactorByYear":348,"i10Index":132,"i10IndexLast5Year":133,"totalPublication":134,"totalPublicationByYear":349,"totalCitation":173,"totalCitationByYear":350,"totalCitationPerPublication":214,"totalCitationPerPublicationByYear":351,"hindexLast5Year":145,"hindex":145},{"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":123,"2019":127,"2020":128,"2021":129,"2022":130,"2023":131},{"1986":136,"1987":137,"1988":138,"1989":139,"1990":140,"1991":141,"1992":142,"1993":143,"1994":144,"1995":145,"1996":141,"1997":146,"1998":147,"1999":148,"2000":149,"2001":150,"2002":151,"2003":152,"2004":153,"2005":154,"2006":155,"2007":152,"2008":156,"2009":157,"2010":158,"2011":159,"2012":160,"2013":161,"2014":162,"2015":163,"2016":164,"2017":165,"2018":166,"2019":167,"2020":168,"2021":169,"2022":170,"2023":171,"2024":172},{"1986":175,"1987":176,"1988":177,"1989":178,"1990":179,"1991":180,"1992":181,"1993":182,"1994":183,"1995":184,"1996":185,"1997":186,"1998":187,"1999":188,"2000":189,"2001":190,"2002":191,"2003":192,"2004":193,"2005":194,"2006":195,"2007":196,"2008":197,"2009":198,"2010":199,"2011":200,"2012":201,"2013":202,"2014":203,"2015":204,"2016":205,"2017":206,"2018":207,"2019":208,"2020":209,"2021":210,"2022":211,"2023":212,"2024":213},{"1986":216,"1987":217,"1988":218,"1989":219,"1990":220,"1991":221,"1992":222,"1993":223,"1994":224,"1995":225,"1996":226,"1997":227,"1998":228,"1999":229,"2000":230,"2001":231,"2002":232,"2003":233,"2004":234,"2005":235,"2006":236,"2007":237,"2008":238,"2009":239,"2010":240,"2011":241,"2012":242,"2013":243,"2014":244,"2015":245,"2016":246,"2017":247,"2018":248,"2019":249,"2020":250,"2021":251,"2022":252,"2023":253,"2024":122},{"volume":353,"pages":355},{"VOID":354},"4",{"VOID":356},"1549-1559","2011-01-31",2011,false,{"id":361,"createTime":362,"updateTime":363,"relativeEntities":364,"slug":365,"properties":366,"entityType":274,"verifyStatus":275,"verifyTime":375,"verifyNote":276,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":376,"fullTextUrl":18,"authors":377,"publicationType":323,"publisherRelationship":432,"citationCount":18,"citationInfo":18,"publishDate":465,"publishYear":358,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":359},"c14dbdaf-4f23-4c82-92af-f5b9c60a794c","2024-02-19T17:04:50.568+00:00","2024-12-30T23:59:41.948+00:00",[],"Synthesis-and-properties-of-strontium-doped-yttrium-manganite",{"references":367,"abstract":369,"title":371,"doi":373},{"VOID":368},"N. Q. Minh, J. Am. Ceram. Soc. 73 (3), 563–588 (1993).\nK. Kendall, Am. Ceram. Soc. Bull. 70 (7), 1159–1160 (1991).\nJ. H. Kuo, H. U. Anderson, and D. M. Sparlin, J. Solid State Chem. 87, 55–63 (1990).\nC. S. Tedmon, H. S. Spacil, and S. P. Mitoff, J. Electrochem. Soc. 116, 1170–1175 (1969).\nH. Yokokawa, N. Sakai, T. Kawada, and M. Dokiya, Solid State Ionics 40\u002F41, 398–401 (1990).\nO. Yamamoto, Y. Takeda, R. Kanno, and M. Noda, Solid State Ionics 22, 241–246 (1987).\nV. S. Stubican, G. S. Corman, J.R. Hellmann, and G. Senft, in Advances in Ceramics, Vol. 12, Science and Technology of Zirconia II, edited by N. Claussen, M. Rühle, and A. H. Heuer (The American Ceramic Society, Inc., Westerville, OH, 1984), pp. 96–106.\nH.L. Yakel, W.C. Koehler, E.F. Bertaut, and E.F. Forrat, Acta Crystallogr. 16, 957–962 (1963).\nE.F. Bertaut, Z. Angew. Phys. 21 (4), 259–268 (1966) (in German).\nNumerical Data and Functional Relationships in Science and Technology, Landolt-Börnstein New Series, edited by K. H. Kellwege, Group III\u002F3, Ferro- and Antiferroelectric Substances (Springer-Verlag, Berlin, 1969), pp. 94–95.\nY. E. Roginskaya, Y. N. Venevtsev, and G. S. Zhdanov, Sov. Phys. JETP 21 (5), 817–822 (1964).\nJ.C. Peuzin, Solid State Commun. 5, 13–16 (1967) (in French).\nV.A. Bokov, G.A. Smolenskii, S.S. Kizhaev, and I.E. Mylnikova, Sov. Phys.-Solid State 5 (12), 2646–2647 (1964).\nE. F. Bertaut, R. Pauthenet, and M. Mercier, Phys. Lett. 7 (2), 110–111 (1963) (in French).\nH. Tamura, E. Sawaguchi, and A. Kikuchi, Jpn. J. Appl. Phys. 4, 621–622 (1965).\nS.A. Kizhaev, V.A. Bokov, and O.V. Kachalov, Sov. Phys.–Solid State 8 (1), 215–216 (1966).\nB.J. Evans and D.R. Peacor, J. Solid State Chem. 7, 36–39 (1973).\nM.P. Pechini, U.S. Patent No. 3330 697 (1967).\nG.J. McCarthy, P.V. Gallagher, and C. Sipe, Mater. Res. Bull. VIII, 1277–1284 (1973).\nS.A. Prokudina, Y.S. Rubinichik, and M.M. Pavlyuchenko, Izv. Acad. Nauk SSSR, Neorg. Mater. 12 (4), 698–703 (1976).\nG. Szabo and R. A. Parisl, CR. Acad. Sci. 268C, 513–516 (1969) (in French).\nA. Waltnal and H. Chenavas, CR. Acad. Sci. 264B, 168–170 (1967) (in French).\nE. Poliert, S. Krupicka, and E. Kuzmicova, J. Phys. Chem. Solids 43 (12), 1137–1145 (1982).\nI.G. Ismailzade and S.A. Kizhaev, Sov. Phys.-Solid State 7 (1), 236–238 (1965).\nK. Bukaszewicz and J.K. Kalicinska, Ferroelectrics 7, 81–82 (1974).",{"EN":370},"The system Y1−xSrxMnO3 (x = 0.000, 0.005, 0.010, 0.050, and 0.100) was studied as a potential cathode material for solid oxide fuel cells. Powders were prepared using an organometallic precursor; however, achieving homogeneous compositions was complicated due to the presence of intermediate, metastable phases. The desired hexagonal Y1−xSrxMnO3 phase formed from the precursor at 800 °C, while small amounts of a metastable orthorhombic (Y,Sr)MnO3 phase formed in the temperature range between 850°and 960 °C, and another orthorhombic YMn2O5 phase between 840°and 1200 °C. The metastable (Y, Sr)MnO3 phase readily transformed into the stable hexagonal phase at about 960 °C. The other metastable intermediate phase, YMn2O5, was formed as a decomposition product of a portion of the major hexagonal YMnO3 at 840 °C, and subsequently reacted with Y2O3 back to the hexagonal YMnO3 at 1200 °C. For the studied compositions, densities higher than 95% theoretical could be obtained by sintering in air at temperatures above 1400 °C for 2 h. The investigated system was comparable in electrical conductivity with the current cathode material La1−xSrxMnO3, and had an average apparent thermal expansion coefficient between 5 and 7 ppm\u002F°C in the temperature range between 200°and 1000 °C. Unfortunately microcracking was observed in all sintered specimens, possibly caused by a high-temperature phase transition between the hexagonal and cubic polymorphs of Y1−xSrxMnO3. The microcracking presents a major obstacle to the use of this material as a cathode in solid oxide fuel cells.",{"EN":372},"Synthesis and properties of strontium-doped yttrium manganite",{"VOID":374},"10.1557\u002FJMR.1994.2645","2024-12-30T23:59:41.947+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002FJMR.1994.2645",[378,393,408,420],{"id":379,"sortIndex":213,"researcher":18,"roles":380,"affiliations":381,"properties":390},"1ba19cb6-cbde-417c-94be-15cf8b293b12",[283],[382],{"id":18,"sortIndex":19,"affiliation":383,"properties":18},{"id":384,"createTime":385,"updateTime":385,"relativeEntities":386,"slug":18,"properties":387,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"4fb9d6c2-f44a-491f-9aa5-f5cbacd6adf8","2024-01-16T23:34:48.906+00:00",[],{"title":388},{"VI":389},"Center for Advanced Materials, The Pennsylvania State University, University Park, USA",{"title":391},{"VI":392},"Vladimir S. Stubican",{"id":394,"sortIndex":19,"researcher":18,"roles":395,"affiliations":396,"properties":405},"451a11df-5276-4c23-a897-49d954c0d54e",[283],[397],{"id":18,"sortIndex":19,"affiliation":398,"properties":18},{"id":399,"createTime":400,"updateTime":400,"relativeEntities":401,"slug":18,"properties":402,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"5c268d9c-2d85-4c3c-921a-5fa195f97b40","2024-02-19T17:04:50.593+00:00",[],{"title":403},{"VI":404},"Department of Ceramic Engineering, The University of Missouri at Rolla, Rolla, USA",{"title":406},{"VI":407},"Bo Fu",{"id":409,"sortIndex":300,"researcher":18,"roles":410,"affiliations":411,"properties":417},"32b4f8d6-cfcb-415f-b49b-925e3cd4d3f6",[283],[412],{"id":18,"sortIndex":19,"affiliation":413,"properties":18},{"id":399,"createTime":400,"updateTime":400,"relativeEntities":414,"slug":18,"properties":415,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":416},{"VI":404},{"title":418},{"VI":419},"Wayne Huebner",{"id":421,"sortIndex":281,"researcher":18,"roles":422,"affiliations":423,"properties":429},"bdfda537-5862-460b-8c7e-12d414221bd1",[283],[424],{"id":18,"sortIndex":19,"affiliation":425,"properties":18},{"id":384,"createTime":385,"updateTime":385,"relativeEntities":426,"slug":18,"properties":427,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":428},{"VI":389},{"title":430},{"VI":431},"Mladen F. Trubelja",{"url":376,"publisher":433,"properties":460},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":434,"slug":10,"properties":435,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":438,"manageAffiliations":439,"indexDatabases":440,"url":18,"thumbnailPath":18,"statistic":455,"gsStatistic":18,"type":254,"analyzePriority":18},[],{"issn":436,"title":437},{"VOID":13},{"VOID":15},[],[],[441,448],{"id":80,"indexDatabase":442,"url":93,"indexYears":94,"academicFieldIds":447,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":443,"label":444,"description":445,"key":90,"publicationTags":446,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97,98,99],{"id":101,"indexDatabase":449,"url":116,"indexYears":18,"academicFieldIds":454,"indexDatabaseRanking":18},{"id":103,"createTime":104,"updateTime":105,"relativeEntities":450,"label":451,"description":452,"key":112,"publicationTags":453,"standard":18},[],{"EN":108,"VI":108},{"VI":110,"EN":111},[114,115],[118],{"impactFactor":19,"impactFactorByYear":456,"i10Index":132,"i10IndexLast5Year":133,"totalPublication":134,"totalPublicationByYear":457,"totalCitation":173,"totalCitationByYear":458,"totalCitationPerPublication":214,"totalCitationPerPublicationByYear":459,"hindexLast5Year":145,"hindex":145},{"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":123,"2019":127,"2020":128,"2021":129,"2022":130,"2023":131},{"1986":136,"1987":137,"1988":138,"1989":139,"1990":140,"1991":141,"1992":142,"1993":143,"1994":144,"1995":145,"1996":141,"1997":146,"1998":147,"1999":148,"2000":149,"2001":150,"2002":151,"2003":152,"2004":153,"2005":154,"2006":155,"2007":152,"2008":156,"2009":157,"2010":158,"2011":159,"2012":160,"2013":161,"2014":162,"2015":163,"2016":164,"2017":165,"2018":166,"2019":167,"2020":168,"2021":169,"2022":170,"2023":171,"2024":172},{"1986":175,"1987":176,"1988":177,"1989":178,"1990":179,"1991":180,"1992":181,"1993":182,"1994":183,"1995":184,"1996":185,"1997":186,"1998":187,"1999":188,"2000":189,"2001":190,"2002":191,"2003":192,"2004":193,"2005":194,"2006":195,"2007":196,"2008":197,"2009":198,"2010":199,"2011":200,"2012":201,"2013":202,"2014":203,"2015":204,"2016":205,"2017":206,"2018":207,"2019":208,"2020":209,"2021":210,"2022":211,"2023":212,"2024":213},{"1986":216,"1987":217,"1988":218,"1989":219,"1990":220,"1991":221,"1992":222,"1993":223,"1994":224,"1995":225,"1996":226,"1997":227,"1998":228,"1999":229,"2000":230,"2001":231,"2002":232,"2003":233,"2004":234,"2005":235,"2006":236,"2007":237,"2008":238,"2009":239,"2010":240,"2011":241,"2012":242,"2013":243,"2014":244,"2015":245,"2016":246,"2017":247,"2018":248,"2019":249,"2020":250,"2021":251,"2022":252,"2023":253,"2024":122},{"volume":461,"pages":463},{"VOID":462},"9",{"VOID":464},"2645-2653","2011-03-03",{"id":467,"createTime":468,"updateTime":469,"relativeEntities":470,"slug":471,"properties":472,"entityType":274,"verifyStatus":275,"verifyTime":485,"verifyNote":276,"syncStatus":17,"languages":18,"translateLanguages":486,"viewCount":19,"primaryUrl":488,"fullTextUrl":18,"authors":489,"publicationType":323,"publisherRelationship":517,"citationCount":18,"citationInfo":18,"publishDate":550,"publishYear":551,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":359},"91a3dc5e-516e-42af-92d3-63d340aa65c3","2024-02-21T03:55:14.693+00:00","2025-01-08T23:59:40.417+00:00",[],"Study-on-precipitation-efficiency-of-solvents-in-postpreparative-treatment-of-nanocrystals",{"references":473,"abstract":475,"title":478,"doi":481,"keywords":483},{"VOID":474},"J.C. Newton, K. Ramaswamy, M. Mandal, G.K. Joshi, A. Kumbhar, and R. Sardar: Low temperature synthesis of magic sized Cdse nanoclusters: Influence of ligands on nanocluster growth and photophysical properties. J. Phys. Chem. C 116, 4380 (2012).\nM.J. Murcia, D.L. Shaw, H. Woodruff, C.A. Naumann, B.A. Young, and E.C. Long: Facile sonochemical synthesis of highly luminescent ZnS-shelled CdSe quantum dots. Chem. Mater. 18, 2219 (2006).\nW. Luan, H. Yang, N. Fan, and S-T. Tu: Synthesis of efficiently green luminescent Cdse\u002FZns nanocrystals via microfluid reaction. Nanoscale Res. Lett. 3, 134 (2008).\nJ.V. Williams, C.N. Adams, N.A. Kotov, and P.E. Savage: Hydrothermal synthesis of CdSe nanoparticles. Ind. Eng. Chem. Res. 46, 4358 (2007).\nB. Kang, S-Q. Chang, Y-D. Dai, and D. Chen: Synthesis of green Cdse\u002FChitosan quantum dots using a polymer assisted-radiation route. Radiat. Phys. Chem. 77, 853 (2008).\nA.L. Efros and A.L. Efros: Interband absorption of light in a semiconductor sphere. Sov. Phys. Semicond. 16, 772 (1982).\nL.E. Brus: Electronic wavefunctions in semiconductor clusters: Experiment and theory. J. Phys. Chem. 90, 2555 (1986).\nY. Wang and N. Herron: Nanometer-sized semiconductor clusters: Materials synthesis, quantum size effects, and photophysical properties. J. Phys. Chem. 95, 525 (1991).\nA.P. Alivisatos: Semiconductor clusters, nanocrystals, and quantum dots. Science 271, 933 (1996).\nV. Babentsov, J. Riegler, J. Schneider, O. Ehlert, T. Nann, and M. Fiederle: Deep level defect luminescene in cadmium selenide nano-crystals films. J. Cryst. Growth 280, 502 (2005).\nM.C. Troparevsky and A. Franceschetti: Radiative recombination of charged excitons and multiexcitons in CdSe quantum dots. Appl. Phys. Lett. 87, 263115 (2005).\nT. Lopez-Luke, A. Wolcott, L-P. Xu, S. Chen, Z. Wen, J. Li, E. De La Rosa, and J.Z. Zhang: Nitrogen doped and CdSe quantum dot-sensitized nanocrystalline TiO2 films for solar energy conversion application. J. Phys. Chem. C 112, 1282 (2008).\nA. Kongkanand, K. Tvrdy, K. Takechi, M. Kuno, and P.V. Kamat: Quantum dot solar cells. Tuning photoresponse through size and shape control of CdSe-TiO2 architecture. J. Am. Chem. Soc. 130, 4007 (2008).\nL.G. Vega Macotela, T.V. Torchynska, J. Douda, R. Pena Sierra, and L. Shcherbyna: Radiative interface state study in CdSe\u002FZnS quantum dots covered by polymer. Mater. Sci. Eng., B 176, 1349 (2011).\nC.B. Murray, D.J. Norris, and M.G. Bawendi: Synthesis and characterization of nearly monodisperse CdE (E = sulfur, selenium, tellurium) semiconductor nanocrystallites. J. Am. Chem. Soc. 115, 8706 (1993).\nW. William Yu, L. Qu, W. Guo, and X. Peng: Experimental determination of excitation co-efficient of CdTe, CdSe, and CdS nanocrystals. Chem. Mater. 15, 2854 (2003).\nJ. van Embden and P. Mulvaney: Nucleation and growth of CdSe nanocrystals in a binary ligand system. Langmuir 21, 10226 (2005).\nJ.L. Merz, S. Lee, and J.K. Furdyna: Self organized growth, ripening, and optical properties of wide bandgap II-VI quantum dots. J. Cryst. Growth 184–185, 228 (1998).\nX. Peng, J. Wickham, and A.P. Alivistatos: Kinetics of II-V colloidal semiconductor nanocrystal growth: Focusing of size distribution. J. Am. Chem. Soc. 120, 5343 (1998).\nC.B. Murray, C.R. Kagan, and M.G. Bawendi: Synthesis and characterization of monodisperse nanocrystals and close packed nanocrystal assemblies. Annu. Rev. Mater. Sci. 30, 545 (2000).\nJ. Jasieniak, C. Bullen, J. van Embden, and P. Mulvaney: Phosphine-free synthesis of CdSe nanocrystals. J. Phys. Chem. B 109, 20665 (2005).\nJ.R.I. Lee, H.D. Whitley, R.W. Meulenberg, A. Wolcott, J.Z. Zhang, D. Prendergast, D.D. Lovingood, G.F. Strouse, T. Ogitsu, E. Schwegler, L.J. Terminello, and T. van Buuren: Ligand mediated modification of electronic structure of CdSe quantum dots. Nano Lett. 12, 276 (2012).\nZ. Li and X. Peng: Size\u002Fshape controlled synthesis of colloidal CdSe quantum disks: Ligand and temperature effects. J. Am. Chem. Soc. 133, 6578 (2011).",{"VI":476,"EN":477},"Nanocrystal CdSe chất lượng cao đã được tổng hợp thông qua tiền chất không hữu cơ và được chiết xuất trong các dung môi khác nhau. Sự khác biệt trong ảnh hưởng của tính chất dung môi như ethanol, N,N-dimethyl formamide (DMF) và acetonitrile đến việc chiết xuất cùng loại nanocrystals (NCs) đã được nghiên cứu liên quan đến chất lượng và độ ổn định của NCs. Việc đặc trưng bằng kỹ thuật nhiễu xạ tia X, quang phổ hấp thụ-phát xạ, và kính hiển vi quét, truyền, và lực nguyên tử đã chứng minh sự hình thành của NCs có tính chất quang học tốt và thành phần bề mặt từ phương pháp tổng hợp được sử dụng. Các độ phân cực khác nhau của dung môi ảnh hưởng mạnh đến phát xạ quang (PL), các khuyết tật bề mặt, nồng độ của các NCs được chiết xuất, kích thước hạt, và sự thụ động bề mặt. Việc chiết xuất bằng ethanol cho ra các NCs có kích thước nhỏ và phân bố kích thước hạt tốt. Chiết xuất bằng DMF làm giảm các khuyết tật ở giao diện và do đó ngăn chặn sự tái hợp bức xạ. Hiện tượng giảm PL đã được quan sát thấy trong cả ba dung môi, và điều này yêu cầu phải ổn định thêm cho NCs. Độ ổn định của các NCs được chiết xuất này đã được đánh giá dựa trên sự thay đổi của các tính chất tương ứng với thời gian. Lão hóa đã chứng minh những tác động xấu của acetonitrile đến việc chiết xuất các NCs ít được thụ động hơn, dẫn đến hiện tượng chín Ostwald và hình thành đảo. Giai đoạn và cấu trúc của NCs vẫn không bị ảnh hưởng bởi lão hóa hay bản chất của dung môi được sử dụng.","High quality CdSe nanocrystals (NCs) were synthesized via a nonorganometallic precursor and extracted in different solvents. The difference in the influence of the nature of the solvent namely ethanol, N,N-dimethyl formamide (DMF), and acetonitrile on extraction of the same type of NCs was studied with respect to quality and stability of NCs. Characterization by x-ray diffraction technique, absorption–emission spectroscopy, scanning, transmission, and atomic force microscopy demonstrated the formation of NCs of good optical property and surface composition from the synthesis method used. Different polarities of the solvent strongly influence photoluminescence (PL), surface defects, concentrations of NCs extracted, particle sizes, and surface passivation. Ethanol extraction results in small-sized NCs and good particle size distribution. DMF extraction causes lesser interfacial defects and hence prevents radiative recombinations. PL quenching was observed in all the three solvents, and this necessitates further stabilization of NCs. The stability of the so-extracted NCs was evaluated for change in their properties with respect to aging. Aging substantiated the adverse effects of acetonitrile to extract the lesser surface passivated NCs leading to Ostwald ripening and island formation. The phase and structure of NCs remain unaffected with aging or by the nature of solvent used.",{"VI":479,"EN":480},"Nghiên cứu về hiệu quả lắng đọng của dung môi trong quá trình xử lý sau chế tạo nanocrystals","Study on precipitation efficiency of solvents in postpreparative treatment of nanocrystals",{"VOID":482},"10.1557\u002Fjmr.2013.268",{"VI":484},"nanocrystals, CdSe, dung môi, photoluminescence, độ ổn định, lão hóa","2024-12-31T10:53:10.376+00:00",[487],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002Fjmr.2013.268",[490,505],{"id":491,"sortIndex":300,"researcher":18,"roles":492,"affiliations":493,"properties":502},"4c9c9e8f-cd0e-4416-988c-e2b18216ae20",[283],[494],{"id":18,"sortIndex":19,"affiliation":495,"properties":18},{"id":496,"createTime":497,"updateTime":497,"relativeEntities":498,"slug":18,"properties":499,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"e64a7e09-0a88-4fb1-b484-09a83544ff7f","2024-01-24T23:08:12.982+00:00",[],{"title":500},{"VI":501},"Centre for Nano and Material Sciences, Jain Global Campus, Jain University, Bangalore, India",{"title":503},{"VI":504},"Balakrishna R. Geetha",{"id":506,"sortIndex":19,"researcher":18,"roles":507,"affiliations":508,"properties":514},"0fa7241e-ef92-428a-be3a-5aa595699d81",[283],[509],{"id":18,"sortIndex":19,"affiliation":510,"properties":18},{"id":496,"createTime":497,"updateTime":497,"relativeEntities":511,"slug":18,"properties":512,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":513},{"VI":501},{"title":515},{"VI":516},"H.R. 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Oliver and G. Pharr: An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. J. Mater. Res. 7, 1564–1583 (1992).\nS. Suresh: Depth Sensing Indentation and Methodology for Mechanical Property Measurements. U.S. Patent No. WO 97\u002F39333, 1997.\nA.E. Giannakopoulos and S. Suresh: Method and Apparatus for Determination of Mechanical Properties of Functionally-Graded Materials. U.S. Patent No. 5,999,887, 1999.\nT. Venkatesh, K.V. Vliet, A. Giannakopoulos, and S. Suresh: Determination of elasto-plastic properties by instrumented sharp indentation: Guidelines for property extraction. Scr. Mater. 42, 833–839 (2000).\nM. Dao, N. Chollacoop, K.J.V Vliet, T.A. Venkatesh, and S. Suresh: Computational modeling of the forward and reverse problems in instrumented sharp indentation. Acta Mater. 49, 3899–3918, (2001).\nY.P. Cao and J. Lu: A new method to extract the plastic properties of metal materials from an instrumented spherical indentation loading curve. Acta Mater. 52, 4023–4032 (2004).\nY.T. Cheng and C.M. Cheng: Can stress–strain relationships be obtained from indentation curves using conical and pyramidal indenters?J. Mater. Res. 14, 3493–3496 (1999).\nX. Zhi-Hui and D. Rowcliffe: Method to determine the plastic properties of bulk materials by nanoindentation. Philos. Mag. A, 1893–1901: Taylor & Francis, Conference Paper, Journal Paper, Second International Indentation Workshop, 15–20 July 2001, Cambridge, UK.\nJ. Alkorta, J. Martinez-Esnaola, and J.G. Sevillano: Absence of one-to-one correspondence between elastoplastic properties and sharp-indentation load–penetration data. J. Mater. Res. 20, 432–437 (2005).\nW. Capehart and Y.T. Cheng: Determining constitutive models from conical indentation: Sensitivity analysis. J. Mater. Res. 18(4), 6 (2003).\nN. Chollacoop, M. Dao, and S. Suresh: Depth-sensing instrumented indentation with dual sharp indenters. Acta Mater. 51, 3713–3729 (2003).\nL. Wang, M. Ganor, and S. Rokhlin: Inverse scaling functions in nanoindentation with sharp indenters: Determination of material properties. J. Mater. Res. 20, 987–1001 (2005).\nX. Chen, N. Ogasawara, M. Zhao, and N. Chiba: On the uniqueness of measuring elastoplastic properties from indentation: The indistinguishable mystical materials. J. Mech. Phys. Solids 55, 1618–1660 (2007).\nG. Valeriy, G. Frederick, and L. Hamed: Process for Determining Viscous, Elastic, Plastic, and Adhesive (Vepa) Properties of Materials Using AFM-Based or Conventional Nano-Indentation. The Patent Cooperation Treaty—Patent WO 2009\u002F009595 A2, 2009.\nB. Marco, B. Leonardo, and F. Vigilio: Method for Detecting Mechanical Features of a Material and Apparatus that Carries Out This Method. The Patent Cooperation Treaty—Patent WO 2006\u002F013450 A2, 2006.\nJ.S. Field and M.V. Swain: Determining the mechanical properties of small volumes of material from submicrometer spherical indentations. J. Mater. Res. 10, 101–112 (1995).\nH. Lan and T.A. Venkatesh: On the uniqueness and sensitivity issues in determining the elastic and plastic properties of power-law hardening materials through sharp and spherical indentation. Philos. Mag. 87, 4671–4729 (2007).\nK. Matsuda: Prediction of stress-strain curves of elastic-plastic materials based on the Vickers indentation. Philos. Mag. A 82(10), 1941–1951 (2002).\nB. Taljat, T. Zacharia, and F. Kosel: New analytical procedure to determine stress-strain curve from spherical indentation data. Int. J. Solids Struct. 35(33), 4411–4426 (1998).\nG. Bolzon, G. Maier, and M. Panico: Material model calibration by indentation, imprint mapping and inverse analysis. Int. J. Solids Struct. 41, 2957–2975 (2004).\nG. Polzer and F. Meißner: Fundamentals of Friction and Wear (VEB Deutscher Verlag für Grundstoffindustrie, Leipzig, Germany, 1982).\nA. Yurkov, V. Skvortsov, I. Buyanovsky, and R. Matvievsky: Sliding friction of diamond on steel, sapphire, alumina and fused silica with and without lubricants. J. Mater. Sci. Lett. 16, 1370–1374 (1997).\nG. Bolzon, M. Bocciarelli, and E.J. Chiarullo: Mechanical characterization of materials by micro-indentation and AFM scanning. Mech. Charact. Mater. 8, 1–108 (2008).\nJ. Nelder and R. Mead: A simplex method for function minimization. Comput. J. 7, 308–313 (1965).\nE. Jones, T. Oliphant, and P. Peterson: (2001–) SciPy: Open source scientific tools for Python. (Online) Available: www.scipy.org.\nMATLAB: Version 7.11.0 (R2010b) (The MathWorks Inc., Natick, MA, 2010).\nC. Begau: Metamodel-based optimization of the welding line in extrusion simulations. Fakultaet für Informatik, Algorithm Engineering (LS 11), Technical University Dortmund, Tech. Rep., 2008.\nD.R. Jones, M. Schonlau, and W.J. Welch: Efficient global optimization of expensive black-box functions. J. Global Optim. 13, 455–492 (1998).\nY.H. Lee, K. Takashima, Y. Higo, and D. Kwon: Prediction of stress directionality from pile-up morphology around remnant indentation. Scr. Mater. 51(9), 887–891 (2004).",{"EN":562},"A method is presented for the identification of plastic material properties, i.e., yield strength and work hardening rate, using the residual imprint geometry formed by a spheroconical indentation. A corresponding finite element simulation with the same tip geometry and maximum as applied in the indentation experiment yields a numerical imprint profile. Then, the imprint profiles resulting from simulation and experiment are compared, and the material parameters of the simulation are varied by an optimization procedure until a satisfying agreement between simulation and experiment is established. At this stage, the material parameters used for the simulation represent the true material properties. It is shown that this procedure yields unique results that are furthermore verified by independent uniaxial straining experiments. Finally, the reliability of this method with special emphasis on its sensitivity with respect to measurement errors of the imprint geometry is demonstrated. Hence, it is concluded that the residual imprint can be regarded as the fingerprint of a material that contains sufficient information on plastic material behavior to uniquely extract values for yield strength and work hardening rate.",{"EN":564},"Determination of plastic material properties by analysis of residual imprint geometry of 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After characterizing and managing these complexities, quantitative mechanical property measurements are performed on a specimen of standard fused silica at temperatures up to 405 °C. The extracted values of hardness and Young's modulus are validated against independent experimental data from conventional mechanical tests, and accuracy comparable to that obtained in standard room-temperature nanoindentation is demonstrated. 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Metallkde., 92, 1068",{},{"id":18,"text":921,"url":18,"identifiers":922},"10.1016\u002Fj.eurpolymj.2004.01.027",{"doi":921},{"id":924,"createTime":925,"updateTime":926,"relativeEntities":927,"slug":928,"properties":929,"entityType":274,"verifyStatus":275,"verifyTime":938,"verifyNote":276,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":939,"fullTextUrl":18,"authors":940,"publicationType":323,"publisherRelationship":1050,"citationCount":18,"citationInfo":18,"publishDate":1082,"publishYear":630,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":359},"c9808b73-e884-497a-90bf-70d168771b7b","2023-12-20T10:26:22.986+00:00","2024-12-27T23:59:12.711+00:00",[],"Plastic-response-of-the-native-oxide-on-Cr-and-Al-thin-films-from-in-situ-conductive-nanoindentation",{"references":930,"abstract":932,"title":934,"doi":936},{"VOID":931},"N. Gane and F.P. Bowden: Microdeformation of solids. J. 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Yoshida: Nanoindentation load-displacement behavior of pure face centered cubic metal thin films on a hard substrate. Thin Solid Films 385(1-2), 198 (2001).\nD.E. Kramer, A.A. Volinsky, N.R. Moody, and W.W. Gerberich: Substrate effects on indentation plastic zone development in thin soft films. J. Mater. Res. 16(11), 3150 (2001).\nT.Y. Tsui, C.A. Ross, and G.M. Pharr: A method for making substrate-independent hardness measurements of soft metallic films on hard substrates by nanoindentation. J. Mater. Res. 18(6), 1383 (2003).",{"EN":933},"Thin native oxide layers can dominate the mechanical properties of metallic thin films. However, to date there has been little quantification of how such overlayers affect yield and fracture during indentation in constrained film systems. To gain insight into such processes, electrical contact resistance was measured in situ during nanoindentation on constrained thin films of epitaxial Cr and polycrystalline Al, both possessing a native oxide overlayer. Measurements during loading of the films show both increases and decreases in current, which can then be used to distinguish between various sources of plasticity. Ex situ measurements of the oxide thickness are used to provide a starting point for elasticity simulations of stress in both systems. The results show that dislocation nucleation in the metal film can be differentiated from oxide fracture during indentation.",{"EN":935},"Plastic response of the native oxide on Cr and Al thin films from in situ conductive nanoindentation",{"VOID":937},"10.1557\u002Fjmr.2011.432","2024-12-27T23:59:12.710+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002Fjmr.2011.432",[941,959,974,986,998,1013,1025,1038],{"id":942,"sortIndex":943,"researcher":18,"roles":944,"affiliations":945,"properties":956},"fd50016b-96f4-4fdd-b084-d607c5d85027",7,[283],[946],{"id":18,"sortIndex":19,"affiliation":947,"properties":18},{"id":948,"createTime":949,"updateTime":950,"relativeEntities":951,"slug":952,"properties":953,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"195965df-816a-4c81-9098-6c623278bb93","2024-04-17T18:09:10.534+00:00","2024-12-18T05:58:01.651+00:00",[],"Department-of-Chemical-Engineering-and-Materials-Science-University-of-Minnesota-Minneapolis-USA",{"title":954},{"EN":955},"Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA",{"title":957},{"VI":958},"William W. 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Goodman and R.W. Douglas, Physica 20, 1107 (1954).\nT. Hamajima, T. Kambara, and K.I. Gondaira, Phys. Rev. B Solid State 24, 3349 (1981).\nK. Kondo, T. Teranishi, and K. Sato, J. Phys. Soc. Jpn. 36, 311 (1974).\nI.G. Austin, C.H.L. Goodman, and A.E. Pengelly, J. Electrochem. Soc. 103, 609 (1956).\nT. Teranishi, K. Sato, and K. Kondo, J. Phys. Soc. Jpn. 36, 1618 (1974).\nG. Donney, L.M. Corliss, J.D.H. Donnay, N. Elliot, and J. Hastings, Phys. Rev. 112, 1917 (1958).\nT. Teranishi, J. Phys. Soc. Jpn. 16, 1881 (1961).\nJ.A. Tossell, D.S. Urch, D.J. Vaughan, and G. Wiech, J. Chem. Phys. 77, 77 (1982).\nJ.E. Dutrizac and R.J.C. MacDonald, Mater. Res. Bull. 8, 961 (1973).\nR.A. Yund and G. Kullerud, J. Petrology 7, 454 (1966).\nM. Rozman and M.J. Drofenik, J. Am. Chem. Soc. 78, 2449 (1995).\nJ. Moon, T. Li, C.A. Randall, and J.H. Adair, J. Mater. Res. 12, 189 (1997).\nY. Qian, Q. Chen, Z. Chen, C. Fan, and G. Zhou, J. Mater. Chem. 3, 203 (1993).\nT. Teranishi, K. Sato, and K. Kondo, J. Phys. Soc. Jpn. 36, 1618 (1974).\nL. Pauling and L.O. Brockway, Z. Kristallogr 82, 188 (1932).\nD.J. Vaughn and J.A. Tossell, Science 179, 375 (1973).\nC.O. Kienitz, C. Thone, and P.G. Jones, Inorg. Chem. 35, 3990 (1996).\nY. Cheng, T.J. Emge, and J.G. Brennan, Inorg. Chem. 35, 7339 (1996).\nS. Dev, E. Ramli, T.B. Rauchfuss, and C.L. Stern, J. Am. Chem. Soc. 112, 6385 (1990).\nS. Dev, E. Ramli, T.B. Rauchfuss, and S.R. Wilson, Inorg. Chem. 30, 2514 (1991).\nP.P. Paul, T.B. Rauchfuss, and S.R. Wilson, J. Am. Chem. Soc. 115, 3316 (1993).\nG. Henshaw, I.P. Parkin, and G.A. Shaw, J. Chem. Soc., Dalton Trans. 231 (1997).",{"EN":1093},"A 100-nm CuFeS2 ultrafine powder was prepared through a solvothermal reaction at 200–250 °C. X-ray powder diffraction and transmission electron microscopy results revealed that chalcopyrite-phase CuFeS2 was crystallized with single-crystalline nature and preferential orientation growth. Mössbauer spectrum exhibited a six-peak hyperfine magnetic spectrum and a single nonmagnetic peak. Elemental analysis gave the atomic ratio of Cu:Fe:S of 1:1.02:2.10. The influence factors on the formation of CuFeS2 ultrafine powder are discussed.",{"EN":1095},"A solvothermal reaction route for the synthesis of CuFeS2 ultrafine powder",{"VOID":1097},"10.1557\u002FJMR.1999.0523","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002FJMR.1999.0523",[1100,1115,1127,1139,1151,1163],{"id":1101,"sortIndex":747,"researcher":18,"roles":1102,"affiliations":1103,"properties":1112},"371f1d43-5e31-4f07-a748-3c4336317d4d",[283],[1104],{"id":18,"sortIndex":19,"affiliation":1105,"properties":18},{"id":1106,"createTime":1107,"updateTime":1107,"relativeEntities":1108,"slug":18,"properties":1109,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"9950049a-9d8c-4ff5-a137-8203b2b2f044","2024-01-07T09:28:37.461+00:00",[],{"title":1110},{"VI":1111},"Department of Chemistry and Structure Research Laboratory, University of Science and Technology of China, Hefei, People’s 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Abraham, J.Q. Broughton, N. Bernstein, and E. Kaxiras: Spanning the continuum to quantum length scales in a dynamic simulation of brittle fracture. Europhys. Lett. 44, 783–787 (1998).\nD.L. McDowell: A perspective on trends in multiscale plasticity. Int. J. Plast. 26, 1280–1309 (2010).\nV. Bulatov, F.F. Abraham, L. Kubin, B. Devincre, and S. Yip: Connecting atomistic and mesoscale simulations of crystal plasticity. Nature 391, 669–672 (1998).\nD.E. Spearot and M.D. Sangid: Insights on slip transmission at grain boundaries from atomistic simulations. Curr. Opin. Solid State Mater. Sci. 18, 188–195 (2014).\nR. Phillips: Multiscale modeling in the mechanics of materials. Curr. Opin. Solid State Mater. Sci. 3, 526–532 (1998).\nE.B. Tadmor and R.E. Miller: Modeling Materials: Continuum, Atomistic and Multiscale Techniques (Cambridge University Press, New York, 2012).\nL. Xiong, G. Tucker, D.L. McDowell, and Y. Chen: Coarse-grained atomistic simulation of dislocations. J. Mech. Phys. Solids, 59, 160–177 (2011).\nS. Xu, R. Che, L. Xiong, Y. Chen, and D.L. McDowell: A quasistatic implementation of the concurrent atomistic-continuum method for FCC crystals. Int. J. Plast. 72, 91–126 (2015).\nY. Chen, J. Zimmerman, A. Krivtsov, and D.L. McDowell: Assessment of atomistic coarse-graining methods. Int. J. Eng. Sci. 49, 1337–1349 (2011).\nY. Chen, J. Lee, and L. Xiong: A generalized continuum theory and its relation to micromorphic theory. J. Eng. Mech. 135, 149–155 (2009).\nS. Xu: The concurrent atomistic-continuum method: Advancements and applications in plasticity of face-centered cubic metals. Ph.D. thesis, Georgia Institute of Technology, 2016.\nJ. Knap and M. Ortiz: An analysis of the quasicontinuum method. J. Mech. Phys. Solids 49, 1899–1923 (2001).\nB. Eidel and A. Stukowski: A variational formulation of the quasicontinuum method based on energy sampling in clusters. J. Mech. Phys. Solids 57, 87–108 (2009).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: An analysis of key characteristics of the Frank–Read source process in FCC metals. J. Mech. Phys. Solids 96, 460–476 (2016).\nS. Xu, L. Xiong, Q. Deng, and D.L. McDowell: Mesh refinement schemes for the concurrent atomistic-continuum method. Int. J. Solids Struct. 90, 144–152 (2016).\nL. Xiong, J. Rigelesaiyin, X. Chen, S. Xu, D.L. McDowell, and Y. Chen: Coarse-grained elastodynamics of fast moving dislocations. Acta Mater. 104, 143–155 (2016).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: Shear stress- and line length-dependent screw dislocation cross-slip in FCC Ni. Acta Mater. 122, 412–419 (2017).\nL. Xiong, S. Xu, D.L. McDowell, and Y. Chen: Concurrent atomistic-continuum simulations of dislocation-void interactions in fcc crystals. Int. J. Plast. 65, 33–42 (2015).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: Validation of the concurrent atomistic-continuum method on screw dislocation\u002Fstacking fault interactions. Crystals 7, 120 (2017).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: Edge dislocations bowing out from a row of collinear obstacles in Al. Scr. Mater. 123, 135–139 (2016).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: Sequential slip transfer of mixed-character dislocations across Σ3 coherent twin boundary in FCC metals: A concurrent atomistic-continuum study. npj Comput. Mater. 2, 15016 (2016).\nS. Xu, L. Xiong, Y. Chen, and D.L. McDowell: Comparing EAM potentials to model slip transfer of sequential mixed character dislocations across two symmetric tilt grain boundaries in Ni. JOM 69, 814–821 (2017).\nY. Chen and J. Lee: Atomistic formulation of a multiscale field theory for nano\u002Fmicro solids. Philos. Mag. 85, 4095–4126 (2005).\nY. Chen: Reformulation of microscopic balance equations for multiscale materials modeling. J. Chem. Phys. 130, 134706 (2009).\nJ.H. Irving and J.G. Kirkwood: The statistical mechanical theory of transport processes. IV. The equations of hydrodynamics. J. Chem. Phys. 18, 817–829 (1950).\nC. Kittel: Introduction to Solid State Physics, 8th ed. (Wiley, Hoboken, NJ, 2004).\nL. Xiong, Y. Chen, and J.D. Lee: Atomistic simulation of mechanical properties of diamond and silicon carbide by a field theory. Modell. Simul. Mater. Sci. Eng. 15, 535–551 (2007).\nL. Xiong and Y. Chen: Coarse-grained simulations of single-crystal silicon. Modell. Simul. Mater. Sci. Eng. 17, 035002 (2009).\nY. Chen: The origin of the distinction between microscopic formulas for stress and Cauchy stress. Europhys. Lett. 116, 34003 (2016).\nY. Chen and A. Diaz: Local momentum and heat fluxes in transient transport processes and inhomogeneous systems. Phys. Rev. E 94, 053309 (2016).\nW.C. Swope, H.C. Andersen, P.H. Berens, and K.R. Wilson: A computer simulation method for the calculation of equilibrium constants for the formation of physical clusters of molecules: Application to small water clusters. J. Chem. Phys. 76, 637–649 (1982).\nD. Sheppard, R. Terrell, and G. Henkelman: Optimization methods for finding minimum energy paths. J. Chem. Phys. 128, 134106 (2008).\nA. Brünger, C.L. Brooks, III, and M. Karplus: Stochastic boundary conditions for molecular dynamics simulations of ST2 water. Chem. Phys. Lett. 105, 495–500 (1984).\nD.J. Evans and G. Morriss: Statistical Mechanics of Nonequilibrium Liquids, 2nd ed. (Cambridge University Press, Cambridge, 2008).\nM.E. Tuckerman: Statistical Mechanics: Theory and Molecular Simulation, 1st ed. (Oxford University Press, Oxford, New York, 2010).\nX. Chen, A. Diaz, L. Xiong, D.L. McDowell, and Y. Chen: Passing waves from atomistic to continuum. J. Comput. Phys. 354, 393–402 (2018).\nH.J.C. Berendsen, J.P.M. Postma, W.F. van Gunsteren, A. DiNola, and J.R. Haak: Molecular dynamics with coupling to an external bath. J. Chem. Phys. 81, 3684–3690 (1984).\nQ. Deng, L. Xiong, and Y. Chen: Coarse-graining atomistic dynamics of brittle fracture by finite element method. Int. J. Plast. 26, 1402–1414 (2010).\nQ. Deng and Y. Chen: A coarse-grained atomistic method for 3D dynamic fracture simulation. Int. J. Multiscale Comput. Eng. 11, 227–237 (2013).\nL. Xiong and Y. Chen: Coarse-grained atomistic modeling and simulation of inelastic material behavior. Acta Mech. Solida Sin. 25, 244–261 (2012).\nL. Xiong, Q. Deng, G. Tucker, D.L. McDowell, and Y. Chen: A concurrent scheme for passing dislocations from atomistic to continuum domains. Acta Mater. 60, 899–913 (2012).\nS. Yang, L. Xiong, Q. Deng, and Y. Chen: Concurrent atomistic and continuum simulation of strontium titanate. Acta Mater. 61, 89–102 (2013).\nL. Xiong, D.L. McDowell, and Y. Chen: Nucleation and growth of dislocation loops in Cu, Al, and Si by a concurrent atomistic-continuum method. Scr. Mater. 67, 633–636 (2012).\nS. Yang, N. Zhang, and Y. Chen: Concurrent atomistic-continuum simulation of polycrystalline strontium titanate. Philos. Mag. 95, 2697–2716 (2015).\nS. Yang and Y. Chen: Concurrent atomistic and continuum simulation of bi-crystal strontium titanate with tilt grain boundary. Proc. R. Soc. London, Ser. A 471, 20140758 (2015).\nL. Xiong, D.L. McDowell, and Y. Chen: Sub-THz phonon drag on dislocations by coarse-grained atomistic simulations. Int. J. Plast. 55, 268–278 (2014).\nX. Chen, L. Xiong, D.L. McDowell, and Y. Chen: Effects of phonons on mobility of dislocations and dislocation arrays. Scr. Mater. 137, 22–26 (2017).\nX. Chen, W. Li, L. Xiong, Y. Li, S. Yang, Z. Zheng, D.L. McDowell, and Y. Chen: Ballistic-diffusive phonon heat transport across grain boundaries. Acta Mater. 136, 355–365 (2017).\nX. Chen, W. Li, A. Diaz, Y. Li, Y. Chen, and D.L. McDowell: Recent progress in the concurrent atomistic-continuum method and its application in phonon transport. MRS Commun., 7, 785–797 (2017).\nS. Chapra and R. Canale: Numerical Methods for Engineers, 6th ed. (McGraw-Hill Science\u002FEngineering\u002FMath, Boston, 2009).\nE. Bitzek, P. Koskinen, F. Gähler, M. Moseler, and P. Gumbsch: Structural relaxation made simple. Phys. Rev. Lett. 97, 170201 (2006).\nB. Eidel, A. Hartmaier, and P. Gumbsch: Atomistic simulation methods and their application on fracture. In Multiscale Modelling of Plasticity and Fracture by Means of Dislocation Mechanics, 1st ed., P. Gumbsch and R. Pippan, eds.; CISM International Centre for Mechanical Sciences (Springer, Vienna, 2010); pp. 1–57. doi: https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-7091-0283-1_1.\nE.B. Tadmor and R.E. Miller: Modeling Materials: Continuum, Atomistic and Multiscale Techniques, 1st ed. (Cambridge University Press, Cambridge, New York, 2012).\nM.P. Allen and D.J. Tildesley: Computer Simulation of Liquids (Oxford University Press, New York, 1989).\nL. Verlet: Computer “experiments” on classical fluids. I. Thermodynamical properties of Lennard-Jones molecules. Phys. Rev. 159, 98–103 (1967).\nJ.E. Jones: On the determination of molecular fields. II. From the equation of state of a gas. Proc. R. Soc. London, Ser. A 106, 463–477 (1924).\nM.S. Daw and M.I. Baskes: Embedded-atom method: Derivation and application to impurities, surfaces, and other defects in metals. Phys. Rev. B, 29, 6443–6453 (1984).\nA. Stukowski: Visualization and analysis of atomistic simulation data with OVITO—The open visualization tool. Modell. Simul. Mater. Sci. Eng. 18, 015012 (2010).\nJ. Li: AtomEye: An efficient atomistic configuration viewer. Modell. Simul. Mater. Sci. Eng. 11, 173 (2003).\nW. Humphrey, A. Dalke, and K. Schulten: VMD: Visual molecular dynamics. J. Mol. Graphics 14, 33–38 (1996).\nC. Begau, A. Hartmaier, E.P. George, and G.M. Pharr: Atomistic processes of dislocation generation and plastic deformation during nanoindentation. Acta Mater. 59, 934–942 (2011).\nC. Begau, J. Hua, and A. Hartmaier: A novel approach to study dislocation density tensors and lattice rotation patterns in atomistic simulations. J. Mech. Phys. Solids 60, 711–722 (2012).\nW. Schroeder, K. Martin, and B. Lorensen: Visualization Toolkit: An Object-Oriented Approach to 3D Graphics, 4th ed. (Kitware, Clifton Park, New York, 2006).\nW. Gropp, T. Hoefler, R. Thakur, and E. Lusk: Using Advanced MPI: Modern Features of the Message-Passing Interface, 1st ed. (The MIT Press, Cambridge, Massachusetts, 2014).\nS. Plimpton: Fast parallel algorithms for short-range molecular dynamics. J. Comput. Phys. 117, 1–19 (1995).\nE.B. Tadmor, M. Ortiz, and R. Phillips: Quasicontinuum analysis of defects in solids. Philos. Mag. A 73, 1529–1563 (1996).\nO. Pearce, T. Gamblin, B.R. de Supinski, T. Arsenlis, and N.M. Amato: Load balancing N-body simulations with highly non-uniform density. In Proceedings of the 28th ACM International Conference on Supercomputing, ICS’14 (ACM, New York, NY, 2014); pp. 113–122.\nF. Pavia and W.A. Curtin: Parallel algorithm for multiscale atomistic\u002Fcontinuum simulations using LAMMPS. Modell. Simul. Mater. Sci. Eng. 23, 055002 (2015).\nE. Biyikli and A.C. To: Multiresolution molecular mechanics: Implementation and efficiency. J. Comput. Phys. 328, 27–45 (2017).\nA. Hunter, F. Saied, C. Le, and M. Koslowski: Large-scale 3D phase field dislocation dynamics simulations on high-performance architectures. Int. J. High Perform. Comput. Appl. 25, 223–235 (2011).\nJ. Towns, T. Cockerill, M. Dahan, I. Foster, K. Gaither, A. Grimshaw, V. Hazlewood, S. Lathrop, D. Lifka, G.D. Peterson, R. Roskies, J.R. Scott, and N. Wilkins-Diehr: XSEDE: Accelerating scientific discovery. Comput. Sci. Eng. 16, 62–74 (2014).\nY. Mishin, D. Farkas, M.J. Mehl, and D.A. Papaconstantopoulos: Interatomic potentials for monoatomic metals from experimental data and ab initio calculations. Phys. Rev. B 59, 3393–3407 (1999).\nG.M. Amdahl: Validity of the single processor approach to achieving large scale computing capabilities. In Proceedings of the April 18–20, 1967, Spring Joint Computer Conference, AFIPS’67 (ACM, Spring, New York, NY, 1967); pp. 483–485.\nY. Chen and J.D. Lee: Connecting molecular dynamics to micromorphic theory. II. Balance laws. Phys. A 322, 377–392 (2003).\nY. Chen and J.D. Lee: Connecting molecular dynamics to micromorphic theory. I. Instantaneous and averaged mechanical variables. Phys. A 322, 359–376 (2003).\nL. Xiong, X. Chen, N. Zhang, D.L. McDowell, and Y. Chen: Prediction of phonon properties of 1D polyatomic systems using concurrent atomistic-continuum simulation. Arch. Appl. Mech. 84, 1665–1675 (2014).\nS.R. Kalidindi, D.B. Brough, S. Li, A. Cecen, A.L. Blekh, F.Y.P. Congo, and C. Campbell: Role of materials data science and informatics in accelerated materials innovation. MRS Bull. 41, 596–602 (2016).\nH. Chen, S. Xu, W. Li, J. Rigelesaiyin, T. Phan, and L. Xiong: A spatial decomposition parallel algorithm for a concurrent atomistic-continuum simulator and its preliminary applications, Comput. Mater. Sci. 144, 1–10 (2018).",{"EN":1218},"We present a novel distributed-memory parallel implementation of the concurrent atomistic-continuum (CAC) method. Written mostly in Fortran 2008 and wrapped with a Python scripting interface, the CAC simulator in PyCAC runs in parallel using Message Passing Interface with a spatial decomposition algorithm. Built upon the underlying Fortran code, the Python interface provides a robust and versatile way for users to build system configurations, run CAC simulations, and analyze results. In this paper, following a brief introduction to the theoretical background of the CAC method, we discuss the serial algorithms of dynamic, quasistatic, and hybrid CAC, along with some programming techniques used in the code. We then illustrate the parallel algorithm, quantify the parallel scalability, and discuss some software specifications of PyCAC; more information can be found in the PyCAC user’s manual that is hosted on \n                http:\u002F\u002Fwww.pycac.org\n                \n              .",{"EN":1220},"PyCAC: The concurrent atomistic-continuum simulation environment",{"VOID":1222},"10.1557\u002Fjmr.2018.8","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1557\u002Fjmr.2018.8",[1225,1254,1269,1284,1296,1313,1325],{"id":1226,"sortIndex":749,"researcher":18,"roles":1227,"affiliations":1228,"properties":1251},"d3306653-51bb-4e73-9b01-444549e26cda",[283],[1229,1241],{"id":1230,"sortIndex":300,"affiliation":1231,"properties":1240},"d55d3a44-ffdd-4fab-96df-1d1d10157185",{"id":1232,"createTime":1233,"updateTime":1234,"relativeEntities":1235,"slug":1236,"properties":1237,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"3fee85e8-7d8e-4aa8-8322-3daeb1d8d23f","2024-02-15T00:17:54.252+00:00","2024-09-22T19:36:10.325+00:00",[],"GWW-School-of-Mechanical-Engineering-Georgia-Institute-of-Technology-Atlanta-USA",{"title":1238},{"VI":1239},"GWW School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, USA",{},{"id":18,"sortIndex":19,"affiliation":1242,"properties":18},{"id":1243,"createTime":1244,"updateTime":1245,"relativeEntities":1246,"slug":1247,"properties":1248,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"6f7013d5-d6bf-4e9b-863f-c10b3070b4fd","2023-12-10T13:25:09.669+00:00","2024-12-30T15:27:36.645+00:00",[],"School-of-Materials-Science-and-Engineering-Georgia-Institute-of-Technology-Atlanta-USA",{"title":1249},{"VI":1250},"School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, USA",{"title":1252},{"VI":1253},"David L. McDowell",{"id":1255,"sortIndex":1027,"researcher":18,"roles":1256,"affiliations":1257,"properties":1266},"4440d00c-65c1-462e-a9d4-b1712a4e311a",[283],[1258],{"id":18,"sortIndex":19,"affiliation":1259,"properties":18},{"id":1260,"createTime":1261,"updateTime":1261,"relativeEntities":1262,"slug":18,"properties":1263,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"97cf1267-e10f-4398-89a1-1c1f05ae526e","2024-01-13T02:00:50.259+00:00",[],{"title":1264},{"VI":1265},"Department of Mechanical and Aerospace Engineering, University of Florida, Gainesville, USA",{"title":1267},{"VI":1268},"Youping Chen",{"id":1270,"sortIndex":747,"researcher":18,"roles":1271,"affiliations":1272,"properties":1281},"0831e867-aee6-47e6-bbb5-81a4790cfb91",[283],[1273],{"id":18,"sortIndex":19,"affiliation":1274,"properties":18},{"id":1275,"createTime":1276,"updateTime":1276,"relativeEntities":1277,"slug":18,"properties":1278,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"3c1a51b2-50e5-4984-b892-dde81d150e21","2023-12-14T03:08:53.010+00:00",[],{"title":1279},{"VI":1280},"Department of Aerospace Engineering, Iowa State University, Ames, USA",{"title":1282},{"VI":1283},"Liming Xiong",{"id":1285,"sortIndex":300,"researcher":18,"roles":1286,"affiliations":1287,"properties":1293},"a1b0b09b-0d0f-45e2-b184-8840f4b8e995",[283],[1288],{"id":18,"sortIndex":19,"affiliation":1289,"properties":18},{"id":1243,"createTime":1244,"updateTime":1245,"relativeEntities":1290,"slug":1247,"properties":1291,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":1292},{"VI":1250},{"title":1294},{"VI":1295},"Thomas G. Payne",{"id":1297,"sortIndex":213,"researcher":18,"roles":1298,"affiliations":1299,"properties":1310},"0d5d5062-5f28-4658-86a2-9a4133346164",[283],[1300],{"id":18,"sortIndex":19,"affiliation":1301,"properties":18},{"id":1302,"createTime":1303,"updateTime":1304,"relativeEntities":1305,"slug":1306,"properties":1307,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"0b4eb671-6e76-494d-bd42-8fa35cb3e351","2023-12-28T05:27:07.485+00:00","2025-06-12T00:11:20.095+00:00",[],"School-of-Computational-Science-and-Engineering-Georgia-Institute-of-Technology-Atlanta-USA",{"title":1308},{"VI":1309},"School of Computational Science and Engineering, Georgia Institute of Technology, Atlanta, USA",{"title":1311},{"VI":1312},"Yongchao Liu",{"id":1314,"sortIndex":281,"researcher":18,"roles":1315,"affiliations":1316,"properties":1322},"530011a8-3207-4bed-b268-3e09c3e1afbd",[283],[1317],{"id":18,"sortIndex":19,"affiliation":1318,"properties":18},{"id":1275,"createTime":1276,"updateTime":1276,"relativeEntities":1319,"slug":18,"properties":1320,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":1321},{"VI":1280},{"title":1323},{"VI":1324},"Hao Chen",{"id":1326,"sortIndex":19,"researcher":18,"roles":1327,"affiliations":1328,"properties":1338},"b75f4cac-1643-49d1-998b-f559b6db0d3f",[283],[1329],{"id":18,"sortIndex":19,"affiliation":1330,"properties":18},{"id":1331,"createTime":1332,"updateTime":1332,"relativeEntities":1333,"slug":1334,"properties":1335,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"5ae8607f-be96-409d-9b4b-15e05572cb75","2024-04-18T18:34:46.611+00:00",[],"California-NanoSystems-Institute-University-of-California-Santa-Barbara-Santa-Barbara-USA",{"title":1336},{"EN":1337},"California NanoSystems Institute, University of California, Santa Barbara, Santa Barbara, USA",{"title":1339},{"VI":1340},"Shuozhi Xu",{"url":1223,"publisher":1342,"properties":1369},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1343,"slug":10,"properties":1344,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1347,"manageAffiliations":1348,"indexDatabases":1349,"url":18,"thumbnailPath":18,"statistic":1364,"gsStatistic":18,"type":254,"analyzePriority":18},[],{"issn":1345,"title":1346},{"VOID":13},{"VOID":15},[],[],[1350,1357],{"id":80,"indexDatabase":1351,"url":93,"indexYears":94,"academicFieldIds":1356,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":1352,"label":1353,"description":1354,"key":90,"publicationTags":1355,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97,98,99],{"id":101,"indexDatabase":1358,"url":116,"indexYears":18,"academicFieldIds":1363,"indexDatabaseRanking":18},{"id":103,"createTime":104,"updateTime":105,"relativeEntities":1359,"label":1360,"description":1361,"key":112,"publicationTags":1362,"standard":18},[],{"EN":108,"VI":108},{"VI":110,"EN":111},[114,115],[118],{"impactFactor":19,"impactFactorByYear":1365,"i10Index":132,"i10IndexLast5Year":133,"totalPublication":134,"totalPublicationByYear":1366,"totalCitation":173,"totalCitationByYear":1367,"totalCitationPerPublication":214,"totalCitationPerPublicationByYear":1368,"hindexLast5Year":145,"hindex":145},{"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":123,"2019":127,"2020":128,"2021":129,"2022":130,"2023":131},{"1986":136,"1987":137,"1988":138,"1989":139,"1990":140,"1991":141,"1992":142,"1993":143,"1994":144,"1995":145,"1996":141,"1997":146,"1998":147,"1999":148,"2000":149,"2001":150,"2002":151,"2003":152,"2004":153,"2005":154,"2006":155,"2007":152,"2008":156,"2009":157,"2010":158,"2011":159,"2012":160,"2013":161,"2014":162,"2015":163,"2016":164,"2017":165,"2018":166,"2019":167,"2020":168,"2021":169,"2022":170,"2023":171,"2024":172},{"1986":175,"1987":176,"1988":177,"1989":178,"1990":179,"1991":180,"1992":181,"1993":182,"1994":183,"1995":184,"1996":185,"1997":186,"1998":187,"1999":188,"2000":189,"2001":190,"2002":191,"2003":192,"2004":193,"2005":194,"2006":195,"2007":196,"2008":197,"2009":198,"2010":199,"2011":200,"2012":201,"2013":202,"2014":203,"2015":204,"2016":205,"2017":206,"2018":207,"2019":208,"2020":209,"2021":210,"2022":211,"2023":212,"2024":213},{"1986":216,"1987":217,"1988":218,"1989":219,"1990":220,"1991":221,"1992":222,"1993":223,"1994":224,"1995":225,"1996":226,"1997":227,"1998":228,"1999":229,"2000":230,"2001":231,"2002":232,"2003":233,"2004":234,"2005":235,"2006":236,"2007":237,"2008":238,"2009":239,"2010":240,"2011":241,"2012":242,"2013":243,"2014":244,"2015":245,"2016":246,"2017":247,"2018":248,"2019":249,"2020":250,"2021":251,"2022":252,"2023":253,"2024":122},{"volume":1370,"pages":1372},{"VOID":1371},"33",{"VOID":1373},"857-871","2018-04-01",2018,{"id":1377,"createTime":1378,"updateTime":1379,"relativeEntities":1380,"slug":1381,"properties":1382,"entityType":274,"verifyStatus":275,"verifyTime":1379,"verifyNote":276,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1391,"fullTextUrl":18,"authors":1392,"publicationType":323,"publisherRelationship":1435,"citationCount":18,"citationInfo":18,"publishDate":1468,"publishYear":1469,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":359},"57e3ca75-5228-4c9e-9162-c5e439612605","2023-12-11T11:04:40.727+00:00","2024-12-28T23:58:35.673+00:00",[],"A-novel-route-for-the-synthesis-of-Sr1-xBaxNb2O6-thin-films",{"references":1383,"abstract":1385,"title":1387,"doi":1389},{"VOID":1384},"S. Nomura and H. Kojima, Jpn. J. Appl. Phys. 13, 1185 (1974).\nS. L. Swartz, IEEE Trans. Electr. Insulation 25, 935 (1990).\nJ. C. Burfoot, in Active and Passive Thin Film Devices, edited by J. C. Coutts (Academic Press, New York, 1978), pp. 697–741.\nE. Dayalan and M. S. Tomar, Thin Solid Films 236, 37 (1993).\nR. Xu, Y. Xu, C. J. Chen, and J. D. Mackenzie, J. Mater. Res. 5, 916 (1990).\nC. J. Chen, Y. Xu, R. Xu, and J. D. Mackenzie, J. Appl. Phys. 69, 1763 (1991).\nS. S. Thony, K. E. Youden, J. S. Harris, Jr., and L. Hesselink, J. Appl. Phys. Lett. 65, 2018 (1994).",{"EN":1386},"Stoichiometric Sr1−xBaxNb2O6 (SBN) powder and thin films were prepared by a chemical method. The starting materials were niobium ethoxide and the hydroxides of strontium and barium. Powders were obtained by evaporation of the precursor solution, and thin films were deposited by spin coating. Annealing temperature required to obtain complete conversion to the crystalline material was about 700 °C. Stoichiometric polycrystalline films of Sr1−xBaxNb2O6 were deposited on quartz and silicon substrates. Leakage current-voltage and the capacitance-voltage measurements on a metal\u002FSBN\u002Fn-silicon structure show a diode-type characteristic.",{"EN":1388},"A novel route for the synthesis of Sr1−xBaxNb2O6 thin films",{"VOID":1390},"10.1557\u002FJMR.1995.2404","http:\u002F\u002Flink.springer.com\u002F10.1557\u002FJMR.1995.2404",[1393,1408,1423],{"id":1394,"sortIndex":281,"researcher":18,"roles":1395,"affiliations":1396,"properties":1405},"180ce264-2374-419c-8da8-951381e19dba",[283],[1397],{"id":18,"sortIndex":19,"affiliation":1398,"properties":18},{"id":1399,"createTime":1400,"updateTime":1400,"relativeEntities":1401,"slug":18,"properties":1402,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"5f195427-51e1-45b1-b111-ca88c427be16","2023-12-11T11:04:31.722+00:00",[],{"title":1403},{"VI":1404},"Erosion\u002FCorrosion Research Center, Mechanical Engineering Department, The University of Tulsa, Tulsa, USA",{"title":1406},{"VI":1407},"E. 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Van Heerden, D. Josell, and D. Shechtman: The formation of f.c.c. titanium in titanium–aluminum multilayers. Acta Mater. 44, 297 (1996).",{"id":18,"text":1649,"url":18,"identifiers":18},"R. Banerjee, X.D. Zhang, S.A. Dregia, and H.L. Fraser: Phase stability in Al\u002FTi multilayers. Acta Mater. 47, 1153 (1999).",{"id":18,"text":1651,"url":18,"identifiers":18},"H. Wormeester, E. Hüger, and E. Bauer: Hcp and bcc Cu and Pd films. Phys. Rev. Lett. 77, 1540 (1996).",{"id":18,"text":1653,"url":18,"identifiers":18},"J.Q. Zheng, J.B. Ketterson, and G.P. Felcher: Synthesis of layered crystals of titanium silver. J. Appl. Phys. 53, 3624 (1982).",{"id":18,"text":1655,"url":18,"identifiers":18},"R. Ahuja and H.L. Fraser: Microstructural transitions in titanium–aluminum thin film multilayers. J. Electron. Mater. 23, 1027 (1994).",{"id":18,"text":1657,"url":18,"identifiers":18},"R. Banerjee, R. Ahuja, and H.L. Fraser: Dimensionally induced structural transformations in titanium–aluminum multilayers. Phys. Rev. Lett. 76, 3778 (1996).",{"id":18,"text":1659,"url":18,"identifiers":18},"J. Chakraborty, K. Kumar, R. Ranjan, S.G. Chowdhury, and S.R. Singh: Thickness-dependent fcc–hcp phase transformation in polycrystalline titanium thin films. Acta Mater. 59, 2615 (2011).",{"id":18,"text":1661,"url":18,"identifiers":18},"S.A. Dregia, R. Banerjee, and H.L. Fraser: Polymorphic phase stability in thin multilayers. Scr. Mater. 39, 217 (1998).",{"id":18,"text":1663,"url":18,"identifiers":18},"W.P. Lowe and T.H. Geballe: NbZr multilayers. I. Structure and superconductivity. Phys. Rev. B 29, 4961 (1984).",{"id":18,"text":1665,"url":18,"identifiers":18},"J.Y. Zhang, P. Zhang, X. Zhang, R.H. Wang, G. Liu, G.J. Zhang, and J. Sun: Mechanical properties of fcc\u002Ffcc Cu\u002FNb nanostructured multilayers. Mater. Sci. Eng., A 545, 118 (2012).",{"id":18,"text":1667,"url":18,"identifiers":18},"M.D. Uchic, P.A. Shade, and D.M. Dimiduk: Plasticity of micrometer-scale single crystals in compression. Annu. Rev. Mater. Res. 39, 361 (2009).",{"id":18,"text":1669,"url":18,"identifiers":18},"N.A. Mara, D. Bhattacharyya, P. Dickerson, R.G. Hoagland, and A. Misra: Deformability of ultrahigh strength 5 nm Cu\u002FNb nanolayered composites. Appl. Phys. Lett. 92, 231901 (2008).",{"id":18,"text":1671,"url":18,"identifiers":18},"M.A. Monclús, S.J. Zheng, J.R. Mayeur, I.J. Beyerlein, N.A. Mara, T. Polcar, J. Llorca, and J.M. Molina-Aldareguía: Optimum high temperature strength of two-dimensional nanocomposites. APL Mater. 1, 052103 (2013).",{"id":18,"text":1673,"url":18,"identifiers":18},"J. Snel, M.A. Monclús, M. Castillo-Rodríguez, N. Mara, I.J. Beyerlein, J. Llorca, and J.M. Molina-Aldareguía: Deformation mechanism map of Cu\u002FNb nanoscale metallic multilayers as a function of temperature and layer thickness. JOM 69, 239–259 (2017).",{"id":18,"text":1675,"url":18,"identifiers":18},"J.Y. Zhang, S. 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