Antiferromagnetic Chern insulators in non-centrosymmetric systems
Abstract
We investigate a new class of topological antiferromagnetic (AF) Chern insulators driven by electronic interactions in two-dimensional systems without inversion symmetry. Despite the absence of a net magnetization, AF Chern insulators (AFCI) possess a nonzero Chern number and exhibit the quantum anomalous Hall effect (QAHE). Their existence is guaranteed by the bifurcation of the boundary line of Weyl points between a quantum spin Hall insulator and a topologically trivial phase with the emergence of AF long-range order. As a concrete example, we study the phase structure of the honeycomb lattice Kane-Mele model as a function of the inversion-breaking ionic potential and the Hubbard interaction. We find an easy -axis AFCI phase and a spin-flop transition to a topologically trivial -plane collinear antiferromagnet. We propose experimental realizations of the AFCI and QAHE in correlated electron materials and cold atom systems.
Cite
@article{arxiv.1710.05035,
title = {Antiferromagnetic Chern insulators in non-centrosymmetric systems},
author = {Kun Jiang and Sen Zhou and Xi Dai and Ziqiang Wang},
journal= {arXiv preprint arXiv:1710.05035},
year = {2018}
}
Comments
5 pages 4 figures + supplementary material. To be published in Physical Review Letters