English

Band Structure Engineering of Multinary Chalcogenide Topological Insulators

Materials Science 2011-10-26 v1

Abstract

Topological insulators (TIs) have been found in strained binary HgTe and ternary I-III-VI2 chalcopyrite compounds such as CuTlSe2 which have inverted band structures. However, the non-trivial band gaps of these existing binary and ternary TIs are limited to small values, usually around 10 meV or less. In this work, we reveal that a large non-trivial band gap requires the material having a large negative crystal field splitting ΔCF\Delta_{CF} at top of the valence band and a moderately large negative sps-p band gap EgspE_g^{s-p}. These parameters can be better tuned through chemical ordering in multinary compounds. Based on this understanding, we show that a series of quaternary I2-II-IV-VI4 compounds, including Cu2HgPbSe4, Cu2CdPbSe4, Ag2HgPbSe4 and Ag2CdPbTe4 are TIs, in which Ag2HgPbSe4 has the largest TI band gap of 47 meV because it combines the optimal values of ΔCF\Delta_{CF} and EgspE_g^{s-p}.

Keywords

Cite

@article{arxiv.1104.0353,
  title  = {Band Structure Engineering of Multinary Chalcogenide Topological Insulators},
  author = {Shiyou Chen and X. G. Gong and Chun-Gang Duan and Zi-Qiang Zhu and Jun-Hao Chu and Aron Walsh and Yu-Gui Yao and Jie Ma and Su-Huai Wei},
  journal= {arXiv preprint arXiv:1104.0353},
  year   = {2011}
}

Comments

5 pages, 3 figures

R2 v1 2026-06-21T17:48:39.735Z