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dc.contributor.authorTalantsev, E. F.en
dc.date.accessioned2024-04-05T16:33:21Z-
dc.date.available2024-04-05T16:33:21Z-
dc.date.issued2023-
dc.identifier.citationTalantsev, E 2023, 'Quantifying interaction mechanism in infinite layer nickelate superconductors', Journal of Applied Physics, Том. 134, № 11, 113904. https://doi.org/10.1063/5.0166329harvard_pure
dc.identifier.citationTalantsev, E. (2023). Quantifying interaction mechanism in infinite layer nickelate superconductors. Journal of Applied Physics, 134(11), [113904]. https://doi.org/10.1063/5.0166329apa_pure
dc.identifier.issn0021-8979-
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access, Green3
dc.identifier.otherhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85172659911&doi=10.1063%2f5.0166329&partnerID=40&md5=fd0a7b7931da0ee7e799b0d539eff3041
dc.identifier.otherhttps://arxiv.org/pdf/2302.14729pdf
dc.identifier.urihttp://elar.urfu.ru/handle/10995/130810-
dc.description.abstractThe connection between the long-range antiferromagnetic order in cuprates and the high-temperature superconductivity is a scientific problem that has yet to be solved after nearly four decades. The properties and difficulties of describing nickelate superconductors are similar to those of cuprates. Recently, Fowlie et al. [Nat. Phys. 18, 1043 (2022)] aimed to detect the antiferromagnetic order in R1-xSrxNiO2 (R = Nd, Pr, La; x ~ 0, 0.2) films by using the muon spin rotation (µSR) technique. The research group reported the presence of short-range antiferromagnetic order in every nickelate studied. Here, our goal was to prove that this interaction is present in the nickelate films. We did this by analyzing the temperature dependent resistivity, ?(T), data from the research group. Global ?(T) data fits to the advanced Bloch-Grüneisen model showed that each of the R1-xSrxNiO2 compounds can be characterized by a unique power-law exponent, p (where p = 2 for the electron-electron scattering, p = 3 for the electron-magnon scattering, and p = 5 for the electron-phonon scattering), and global characteristic temperature, T? (which has the meaning of the Debye temperature at p = 5). We found that p = 2.0 in Nd- and Pr-based compounds and p = 1.3 for La-based compounds. The latter value does not have any interpretation within established theoretical models. We also analyzed ?(T) data for Nd1-xSrxNiO2 ( 0.125 = x = 0.325 ) reported by Lee et al. [Nature 619, 288 (2023)]. Our analysis of nickelates led us to conclude that a new theoretical model is needed to describe ?(T) in materials exhibiting a short-range antiferromagnetic order. © 2023 Author(s).en
dc.description.sponsorshipStanford University, SU; Ministry of Education and Science of the Russian Federation, Minobrnauka; Ministry of Science and Higher Education of the Russian Federation: 122021000032-5en
dc.description.sponsorshipThe author thanks Jennifer Fowlie (Stanford University) and all co-workers of Ref. 75 for making raw experimental data freely available, which makes it possible to perform this study. The author acknowledges financial support provided by the Ministry of Science and Higher Education of Russia (theme “Pressure” No. 122021000032-5). The research funding from the Ministry of Science and Higher Education of the Russian Federation (Ural Federal University Program of Development within the Priority-2030 Program) is gratefully acknowledged.en
dc.description.sponsorshipThe author thanks Jennifer Fowlie (Stanford University) and all co-workers of Ref. for making raw experimental data freely available, which makes it possible to perform this study. The author acknowledges financial support provided by the Ministry of Science and Higher Education of Russia (theme “Pressure” No. 122021000032-5). The research funding from the Ministry of Science and Higher Education of the Russian Federation (Ural Federal University Program of Development within the Priority-2030 Program) is gratefully acknowledged.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherAmerican Institute of Physics Inc.en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourceJournal of Applied Physics2
dc.sourceJournal of Applied Physicsen
dc.subjectANTIFERROMAGNETISMen
dc.subjectCOPPER COMPOUNDSen
dc.subjectELECTRON SCATTERINGen
dc.subjectLANTHANUM COMPOUNDSen
dc.subjectNEODYMIUM COMPOUNDSen
dc.subjectNICKEL COMPOUNDSen
dc.subjectPHONONSen
dc.subjectPRASEODYMIUM COMPOUNDSen
dc.subjectANTIFERROMAGNETIC ORDERINGSen
dc.subjectCUPRATESen
dc.subjectHIGH-TEMPERATURE SUPERCONDUCTIVITYen
dc.subjectINFINITE-LAYERen
dc.subjectINTERACTION MECHANISMSen
dc.subjectMUON SPIN ROTATIONen
dc.subjectNICKELATESen
dc.subjectPROPERTYen
dc.subjectRESEARCH GROUPSen
dc.subjectTHEORETICAL MODELINGen
dc.subjectELECTRONSen
dc.titleQuantifying interaction mechanism in infinite layer nickelate superconductorsen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.type|info:eu-repo/semantics/submittedVersionen
dc.identifier.doi10.1063/5.0166329-
dc.identifier.scopus85172659911-
local.contributor.employeeTalantsev, E.F., M.N. Miheev Institute of Metal Physics, Ural Branch, Russian Academy of Sciences, 18, S. Kovalevskoy St., Ekaterinburg, 620108, Russian Federation, NANOTECH Centre, Ural Federal University, 19 Mira St., Ekaterinburg, 620002, Russian Federationen
local.issue11-
local.volume134-
dc.identifier.wos001071591600001-
local.contributor.departmentM.N. Miheev Institute of Metal Physics, Ural Branch, Russian Academy of Sciences, 18, S. Kovalevskoy St., Ekaterinburg, 620108, Russian Federationen
local.contributor.departmentNANOTECH Centre, Ural Federal University, 19 Mira St., Ekaterinburg, 620002, Russian Federationen
local.identifier.pure45997566-
local.description.order113904-
local.identifier.eid2-s2.0-85172659911-
local.identifier.wosWOS:001071591600001-
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