English

Topological phase transition induced by magnetic proximity effect in two dimensions

Materials Science 2019-07-12 v1 Mesoscale and Nanoscale Physics

Abstract

We study the magnetic proximity effect on a two-dimensional topological insulator in a CrI3_3/SnI3_3/CrI3_3 trilayer structure. From first-principles calculations, the BiI3_3-type SnI3_3 monolayer without spin-orbit coupling has Dirac cones at the corners of the hexagonal Brillouin zone. With spin-orbit coupling turned on, it becomes a topological insulator, as revealed by a non-vanishing Z2Z_2 invariant and an effective model from symmetry considerations. Without spin-orbit coupling, the Dirac points are protected if the CrI3_3 layers are stacked ferromagnetically, and are gapped if the CrI3_3 layers are stacked antiferromagnetically, which can be explained by the irreducible representations of the magnetic space groups C3i1C_{3i}^1 and C3i1(C31)C_{3i}^1(C_3^1), corresponding to ferromagnetic and antiferromagnetic stacking, respectively. By analyzing the effective model including the perturbations, we find that the competition between the magnetic proximity effect and spin-orbit coupling leads to a topological phase transition between a trivial insulator and a topological insulator.

Keywords

Cite

@article{arxiv.1906.07507,
  title  = {Topological phase transition induced by magnetic proximity effect in two dimensions},
  author = {Yijie Zeng and Luyang Wang and Song Li and Chunshan He and Dingyong Zhong and Dao-Xin Yao},
  journal= {arXiv preprint arXiv:1906.07507},
  year   = {2019}
}

Comments

11 pages, 5 figures, 2 tables. Accepted by Journal of Physics: Condensed Matter

R2 v1 2026-06-23T09:56:47.330Z