Spirals and skyrmions in antiferromagnetic triangular lattices
Abstract
We study realizations of spirals and skyrmions in two-dimensional antiferromagnets with a triangular lattice on an inversion-symmetry-breaking substrate. As a possible material realization, we investigate the adsorption of transition-metal atoms (Cr, Mn, Fe, or Co) on a monolayer of MoS, WS, or WSe and obtain the exchange, anisotropy, and Dzyaloshinskii-Moriya interaction parameters using first-principles calculations. Using energy minimization and parallel-tempering Monte-Carlo simulations, we determine the magnetic phase diagrams for a wide range of interaction parameters. We find that skyrmion lattices can appear even with weak Dzyaloshinskii-Moriya interactions, but their stability is hindered by magnetic anisotropy. However, a weak easy plane magnetic anisotropy can be beneficial for stabilizing the skyrmion phase. Our results suggest that CrMoS, FeMoS, and FeWSe interfaces can host spin spirals formed from the 120 antiferromagnetic states. Our results further suggests that for other interfaces, such as FeMoS, the Dzyaloshinskii-Moriya interaction is strong enough to drive the system into a three-sublattice skyrmion lattice in the presence of experimentally feasible external magnetic field.
Cite
@article{arxiv.2102.11246,
title = {Spirals and skyrmions in antiferromagnetic triangular lattices},
author = {Wuzhang Fang and Aldo Raeliarijaona and Po-Hao Chang and Alexey A. Kovalev and Kirill D. Belashchenko},
journal= {arXiv preprint arXiv:2102.11246},
year = {2021}
}
Comments
11 pages, 10 figures