English

Twisted nodal wires and three-dimensional quantum spin Hall effect in distorted square-net compounds

Materials Science 2022-06-14 v3

Abstract

Recently, square-net materials have attracted lots of attention for the Dirac semimetal phase with negligible spin-orbit coupling (SOC) gap, e.g. ZrSiS/LaSbTe and CaMnSb2_2. In this paper, we demonstrate that the Jahn-Teller effect enlarges the nontrivial SOC gap in the distorted structure, e.g. LaAsS and SrZnSb2_2. Its distorted XX square-net layer (X=X= P, As, Sb, Bi) resembles a quantum spin Hall (QSH) insulator. Since these QSH layers are simply stacked in the x^\hat{x} direction and weakly coupled, three-dimensional QSH effect can be expected in these distorted materials, such as insulating compounds CeAs1+x_{1+x}Se1y_{1-y} and EuCdSb2_2. Our detailed calculations show that it hosts two twisted nodal wires without SOC [each consists of two noncontractible time-reversal symmetry- and inversion symmetry-protected nodal lines touching at a fourfold degenerate point], while with SOC it becomes a topological crystalline insulator with symmetry indicators (000;2)(000; 2) and mirror Chern numbers (0,0)(0, 0). The nontrivial band topology is characterized by a generalized spin Chern number Cs+=2C_{s+}=2 when there is a gap between two sets of s^x\hat{s}_{x} eigenvalues. The nontrivial topology of these materials can be well reproduced by our tight-binding model and the calculated spin Hall conductivity is quantized to σyzx=(e)Gxe2πh\sigma^{x}_{yz} = (\frac{\hbar}{e})\frac{G_xe^2}{\pi h} with GxG_x a reciprocal lattice vector.

Keywords

Cite

@article{arxiv.2112.14467,
  title  = {Twisted nodal wires and three-dimensional quantum spin Hall effect in distorted square-net compounds},
  author = {Junze Deng and Dexi Shao and Jiacheng Gao and Changming Yue and Hongming Weng and Zhong Fang and Zhijun Wang},
  journal= {arXiv preprint arXiv:2112.14467},
  year   = {2022}
}
R2 v1 2026-06-24T08:34:29.289Z