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Comparative studies on the room-temperature ferrielectric and ferrimagnetic Ni(3)TeO(6)-type A(2)FeMoO(6) compounds (A = Sc, Lu)

First-principles calculations have been carried out to study the structural, electric, and magnetic properties of Ni(3)TeO(6)-type A(2)FeMoO(6) compounds (A = Sc, Lu). Their electric and magnetic properties behave like room-temperature ferrielectric and ferrimagnetic insulators where polarization co...

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Detalles Bibliográficos
Autores principales: Song, Guang, Zhang, Weiyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4735590/
https://www.ncbi.nlm.nih.gov/pubmed/26831406
http://dx.doi.org/10.1038/srep20133
Descripción
Sumario:First-principles calculations have been carried out to study the structural, electric, and magnetic properties of Ni(3)TeO(6)-type A(2)FeMoO(6) compounds (A = Sc, Lu). Their electric and magnetic properties behave like room-temperature ferrielectric and ferrimagnetic insulators where polarization comes from the un-cancelled antiparallel dipoles of (A(1), Fe(3+)) and (A(2), Mo(3+)) ion groups, and magnetization from un-cancelled antiparallel moments of Fe(3+) [Image: see text] and Mo(3+) [Image: see text] ions. The net polarization increases with A’s ionic radius and is 7.1 and 8.7 μCcm(−2) for Sc(2)FeMoO(6) and Lu(2)FeMoO(6), respectively. The net magnetic moment is 2 μ(B) per formula unit. The magnetic transition temperature is estimated well above room-temperature due to the strong antiferromagnetic superexchange coupling among Fe(3+) and Mo(3+) spins. The estimated paraelectric to ferrielectric transition temperature is also well above room-temperature. Moreover, strong magnetoelectric coupling is also anticipated because the magnetic ions are involved both in polarization and magnetization. The fully relaxed Ni(3)TeO(6)-type A(2)FeMoO(6) structures are free from soft-phonon modes and correspond to stable structures. As a result, Ni(3)TeO(6)-type A(2)FeMoO(6) compounds are possible candidates for room-temperature multiferroics with large magnetization and polarization.