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Electronic correlation and spin-orbit coupling in J1-J2 square lattice antiferromagnetism MoOPO4.

Authors :
Wang, Runxue
Hao, Xianfeng
Wang, Cuihong
Zhang, Xipeng
Sun, Keju
Xu, Yuanhui
Source :
Journal of Applied Physics; 2019, Vol. 125 Issue 10, pN.PAG-N.PAG, 7p, 3 Diagrams, 2 Charts, 1 Graph
Publication Year :
2019

Abstract

We investigated the electronic and magnetic properties of the tetragonal molybdenum phosphate MoOPO<subscript>4</subscript> by means of first-principles calculations based on the density functional theory within the semilocal generalized gradient approximation that includes the Hubbard repulsion term to take into account the electronic correlations. Furthermore, the spin-orbit coupling is explored through noncollinear magnetic calculations. Our results demonstrated that the Néel ordering on the square lattice plane, experimentally observed, is indeed the magnetic ground state on condition that the effective electronic correlation correction is smaller than 2.0 eV. Otherwise, the ferromagnetic alignment is established. In addition, the out-of-plane ferromagnetic interaction is well reproduced. The computed exchange constants, extracted from the classical Heisenberg model, show that the modest antiferromagnetic in-plane nearest-neighbor coupling plays a decisive role in the stabilization of the Néel spin alignment, in conjunction with the remarkable ferromagnetic in-plane next nearest-neighbor interaction. Moreover, the sign and relative amplitude of the exchange coupling parameters is sensitive to the correlation strength we applied. The density of states and spin density analysis demonstrated that the exclusively occupied d x y orbital results in the pure S = 1/2 spin moment and negligible spin-orbit coupling, which is originated from the large displacement of Mo ions inside the MoO<subscript>6</subscript> octahedra along the apical direction. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
125
Issue :
10
Database :
Complementary Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
135358165
Full Text :
https://doi.org/10.1063/1.5083123