Theoretical Study of Magnetoelectric Effects in Honeycomb Antiferromagnet Co4Nb2O9
arXiv:1912.12391 · doi:10.7566/JPSCP.30.011188
Abstract
The honeycomb antiferromagnet Co4Nb2O9 is known to exhibit an interesting magnetoelectric effect that the electric polarization rotates at the twice speed in the opposite direction relative to the rotation of the external magnetic field applied in the basal ab-plane. The spin-dependent electric dipole can be an origin of the magnetoelectric effect. It is described by the product of spin operators at different sites (type-I theory) or at the same site (type-II theory). We examine the electric polarization for the two cases on the basis of the symmetry analysis of the crystal structure of Co4Nb2O9, and conclude that the latter is the origin of the observed result. This paper also gives a general description of the field-induced electric polarization on honeycomb lattices with the C3 point group symmetry on the basis of the type-I theory.
6 pages, 2 figures, to be published in JPS Conf. Proc. (2020), Proceedings of International Conference on Strongly Correlated Electron Systems 2019 (SCES-2019, Okayama, Japan)
References in corpus (6)
- Spin current and magneto-electric effect in non-collinear magnets
- Magnetoelectric MnPS3 thiophosphate as a new candidate for ferrotoroidicity
- Manipulating magnetoelectric effect -- Essence learned from CoNbO
- Experimental and first-principles studies of magnetism and magnetoelectric effect in Co4Nb2O9 and Co4Ta2O9
- Symmetry Analysis of Spin-Dependent Electric Dipole and Its Application to Magnetoelectric Effects
- Symmetry Analysis of Magnetoelectric Effects in Honeycomb Antiferromagnet Co4Nb2O9