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Large orbital moment and spin-orbit enabled Mott transition in the Ising Fe honeycomb lattice of BaFe2(PO4)(2)

Authors
Song, Young-JoonLee, Kwan-WooPickett, Warren E.
Issue Date
4-9월-2015
Publisher
AMER PHYSICAL SOC
Citation
PHYSICAL REVIEW B, v.92, no.12
Indexed
SCIE
SCOPUS
Journal Title
PHYSICAL REVIEW B
Volume
92
Number
12
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/92500
DOI
10.1103/PhysRevB.92.125109
ISSN
2469-9950
Abstract
BaFe2(PO4)(2) is an unusual Ising insulating ferromagnet based on the Fe2+ spin S = 2 ion, the susceptibility of which suggests a large orbital component to the Fe local moment. We apply density functional theory based methods to obtain a microscopic picture of the competing interactions and the critical role of spin-orbit coupling (SOC) in this honeycomb lattice system. The low-temperature ferromagnetic phase displays a half-semimetallic Dirac point pinning the Fermi level and preventing gap opening before consideration of SOC, presenting a case in which correlation effects modeled by a repulsive Hubbard U fail to open a gap. Simultaneous inclusion of both correlation and SOC drives a large orbital moment in excess of 0.7 mu(B) (essentially L = 1) for spin aligned along the (c) over cap axis, with a gap comparable with the inferred experimental value. The large orbital moment accounts for the large Ising anisotropy, in spite of the small magnitude of the SOC strength on the 3d (Fe) ion. Ultimately, the Mott-Hubbard gap is enabled by degeneracy lifting by SOC and the large Fe moments, rather than by standard Hubbard interactions alone. We suggest that competing orbital occupations are responsible for the structural transitions involved in the observed reentrant rhombohedral-triclinic-rhombohedral sequence.
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Lee, Kwan Woo
과학기술대학 (디스플레이·반도체물리학부 반도체물리전공)
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