English

Quantum Spin Hall Effect in Ta$_2$M$_3$Te$_5$ (M = Pd, Ni)

Materials Science 2021-03-29 v1 Mesoscale and Nanoscale Physics

Abstract

Quantum spin Hall (QSH) effect with great promise for the potential application in spintronics and quantum computing has attracted extensive research interest from both theoretical and experimental researchers. Here, we predict monolayer Ta2_2Pd3_3Te5_5 can be a QSH insulator based on first-principles calculations. The interlayer binding energy in the layered van der Waals compound Ta2_2Pd3_3Te5_5 is 19.6 meV/A2^2; thus, its monolayer/thin-film structures could be readily obtained by exfoliation. The band inversion near the Fermi level (EFE_F) is an intrinsic characteristic, which happens between Ta-5d5d and Pd-4d4d orbitals without spin-orbit coupling (SOC). The SOC effect opens a global gap and makes the system a QSH insulator. With the dd-dd band-inverted feature, the nontrivial topology in monolayer Ta2_2Pd3_3Te5_5 is characterized by the time-reversal topological invariant Z2=1\mathbb Z_2=1, which is computed by the one-dimensional (1D) Wilson loop method as implemented in our first-principles calculations. The helical edge modes are also obtained using surface Green's function method. Our calculations show that the QSH state in Ta2M3_2M_3Te5_5 (M=M= Pd, Ni) can be tuned by external strain. These monolayers and thin films provide feasible platforms for realizing QSH effect as well as related devices.

Keywords

Cite

@article{arxiv.2012.05917,
  title  = {Quantum Spin Hall Effect in Ta$_2$M$_3$Te$_5$ (M = Pd, Ni)},
  author = {Zhaopeng Guo and Dayu Yan and Haohao Sheng and Simin Nie and Youguo Shi and Zhijun Wang},
  journal= {arXiv preprint arXiv:2012.05917},
  year   = {2021}
}

Comments

11 pages, 12 figures, 1 table

R2 v1 2026-06-23T20:53:03.721Z