First principles study of spin spirals in the multiferroic BiFeO<sub>3</sub>
ORAL
Abstract
We carry out density functional theory (DFT) calculations to explore the antiferromagnetic (AFM) spin spiral in multiferroic BiFeO3. We calculate the spin spiral energy dispersion E(q) along the high symmetry directions of the pseudo-cubic unit cell, for four different structural phases: cubic, R-3c, R3m and R3c. In all cases, we find a large exchange frustration. The comparison provides detailed insight into how polarization and octahedral anti-phase tilting affect the different magnetic interactions and the magnetic ground state in BiFeO3. For the R3c structural ground state, we find an AFM spin spiral ground state with a periodicity of ∽80 nm in good agreement with experiments and previous findings. This spin spiral is driven by a Dzyaloshinskii-Moriya interaction stemming from the Fe–Bi ferroelectric displacement. The spiral appears to be stable because the anisotropy energy in R3c BiFeO3 is too small to enforce the collinear order. For all the four phases, we discuss the magnetic ground state and identify its stabilization mechanisms.
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Publication: Xu, B., Meyer, S., Verstraete, M. J., Bellaiche, L. & Dupé, B. Phys. Rev. B 103, 214423 (2021)
Presenters
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Sebastian Meyer
University of Liège
Authors
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Sebastian Meyer
University of Liège
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Laurent Bellaiche
University of Arkansas
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Bin Xu
School of Physical Science and Technology, Soochow University, Suzhou, Jiangsu 215006, China, Soochow University, China, Soochow University, School of Physical Science and Technology, Soochow University, Suzhou, China
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Bertrand Dupé
University of Liège
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Matthieu J Verstraete
University of Liege