Magnetization reversal driven by electron localization-delocalization crossover in the inverse spinel Co2VO4

dc.contributor.author Kademane, Abhijit Bhat
dc.contributor.author Bhandari, Churna
dc.contributor.author Paudyal, Durga
dc.contributor.author Cottrell, Stephen
dc.contributor.author Das, Pinaki
dc.contributor.author Liu, Yong
dc.contributor.author Yiu, Yuen
dc.contributor.author Kumar, C. M. Naveen
dc.contributor.author Siemensmeyer, Konrad
dc.contributor.author Hoser, Andreas
dc.contributor.author Quintero-Castro, Diana Lucia
dc.contributor.author Vaknin, David
dc.contributor.author Toft-Petersen, Rasmus
dc.contributor.department Ames National Laboratory
dc.contributor.department Department of Electrical and Computer Engineering
dc.date.accessioned 2023-05-17T19:33:41Z
dc.date.available 2023-05-17T19:33:41Z
dc.date.issued 2022-03-07
dc.description.abstract Neutron diffraction, magnetization, and muon spin relaxation measurements, supplemented by density functional theory (DFT) calculations are employed to unravel temperature-driven magnetization reversal in inverse spinel Co2VO4. All measurements show a second-order magnetic phase transition at T-C = 168 K to a collinear ferrimagnetic phase. Neutron diffraction measurements reveal two antiparallel ferromagnetic (FM) sublattices, belonging to magnetic ions on two distinct crystal lattice sites, where the relative balance between the two sublattices determine the net FM moment in the unit cell. As the evolution of the ordered moment with temperature differs between the two sublattices, the net magnetic moment reaches a maximum at T-NC = 138 K and reverses its sign at T-MR = 65 K. The DFT results suggest that the underlying microscopic mechanism for the reversal is a delocalization of the unfilled 3d-shell electrons on one sublattice just below T-C, followed by a gradual localization as the temperature is lowered. This delocalized-localized crossover is supported by muon spectroscopy results, as strong T-1 relaxation observed below T-C indicates fluctuating internal fields.
dc.description.comments This article is published as Kademane, Abhijit Bhat, Churna Bhandari, Durga Paudyal, Stephen Cottrell, Pinaki Das, Yong Liu, Yuen Yiu et al. "Magnetization reversal driven by electron localization-delocalization crossover in the inverse spinel Co 2 VO 4." Physical Review B 105, no. 9 (2022): 094408. DOI: 10.1103/PhysRevB.105.094408. Copyright 2022 American Physical Society. Posted with permission. DOE Contract Number(s): AC02-07CH11358.
dc.identifier.other 1875272
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/2vaZmJ5r
dc.language.iso en
dc.publisher Iowa State University Digital Repository, Ames IA (United States)
dc.relation.ispartofseries IS-J 10743
dc.source.uri https://doi.org/10.1103/PhysRevB.105.094408 *
dc.subject.disciplines DegreeDisciplines::Physical Sciences and Mathematics::Physics::Condensed Matter Physics
dc.title Magnetization reversal driven by electron localization-delocalization crossover in the inverse spinel Co2VO4
dc.type article
dspace.entity.type Publication
relation.isOrgUnitOfPublication 25913818-6714-4be5-89a6-f70c8facdf7e
relation.isOrgUnitOfPublication a75a044c-d11e-44cd-af4f-dab1d83339ff
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