English

Discovering new two-dimensional topological insulators from computational screening

Materials Science 2019-03-13 v2

Abstract

We have performed a computational screening of topological two-dimensional (2D) materials from the Computational 2D Materials Database (C2DB) employing density functional theory. A full \textit{ab initio} scheme for calculating hybrid Wannier functions directly from the Kohn-Sham orbitals has been implemented and the method was used to extract Z2\mathbb{Z}_2 indices, Chern numbers and Mirror Chern numbers of 3331 2D systems including both experimentally known and hypothetical 2D materials. We have found a total of 46 quantum spin Hall insulators, 7 quantum anomalous Hall insulators and 9 crystalline topological insulators that are all predicted to be dynamically stable. Roughly one third of these were known prior to the screening. The most interesting of the novel topological insulators are investigated in more detail. We show that the calculated topological indices of the quantum anomalous Hall insulators are highly sensitive to the approximation used for the exchange-correlation functional and reliable predictions of the topological properties of these materials thus require methods beyond density functional theory. We also performed GWGW calculations, which yield a gap of 0.65 eV for the quantum spin Hall insulator PdSe2_2 in the MoS2_2 crystal structure. This is significantly higher than any known 2D topological insulator and three times larger than the Kohn-Sham gap.

Keywords

Cite

@article{arxiv.1812.06666,
  title  = {Discovering new two-dimensional topological insulators from computational screening},
  author = {Thomas Olsen and Erik Andersen and Takuya Okugawa and Daniele Torelli and Thorsten Deilmann and Kristian S. Thygesen},
  journal= {arXiv preprint arXiv:1812.06666},
  year   = {2019}
}

Comments

12 pages

R2 v1 2026-06-23T06:44:17.909Z