Feature-energy duality of topological boundary states in multilayer quantum spin Hall insulator

Fuente: arXiv
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Main Authors: Yao, Yueh-Ting, Zhou, Xiaoting, Hung, Yi-Chun, Lin, Hsin, Bansil, Arun, Chang, Tay-Rong
Format: Preprint
Published: 2023
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author Yao, Yueh-Ting
Zhou, Xiaoting
Hung, Yi-Chun
Lin, Hsin
Bansil, Arun
Chang, Tay-Rong
author_facet Yao, Yueh-Ting
Zhou, Xiaoting
Hung, Yi-Chun
Lin, Hsin
Bansil, Arun
Chang, Tay-Rong
contents Gapless topological boundary states characterize nontrivial topological phases arising from the bulk-boundary correspondence in symmetry-protected topological materials, such as the emergence of helical edge states in a two-dimensional $\mathbb{Z}_2$ topological insulator. However, the incorporation of symmetry-breaking perturbation terms in the Hamiltonian leads to the gapping of these edge bands, resulting in missing these crucial topological boundary states. In this work, we systematically investigate the robustness of bulk-boundary correspondence in the quantum spin Hall insulator via recently introduced feature spectrum topology. Our findings present a comprehensive understanding of feature-energy duality, illustrating that the aggregate number of gapless edge states in the energy-momentum ($\it{E-k}$) map and the non-trivial edge states in the $\hat{S}_z$ feature spectrum equals the spin Chern number of multilayer quantum spin Hall insulator. We identify a van der Waals material bismuth bromide $\rm(Bi_4Br_4)$ as a promising candidate through first-principles calculations. Our work not only unravels the intricacies of bulk-boundary correspondence but also charts a course for exploring quantum spin Hall insulators with high spin-Chern number.
format Preprint
id arxiv_https___arxiv_org_abs_2312_11794
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Feature-energy duality of topological boundary states in multilayer quantum spin Hall insulator
Yao, Yueh-Ting
Zhou, Xiaoting
Hung, Yi-Chun
Lin, Hsin
Bansil, Arun
Chang, Tay-Rong
Materials Science
Gapless topological boundary states characterize nontrivial topological phases arising from the bulk-boundary correspondence in symmetry-protected topological materials, such as the emergence of helical edge states in a two-dimensional $\mathbb{Z}_2$ topological insulator. However, the incorporation of symmetry-breaking perturbation terms in the Hamiltonian leads to the gapping of these edge bands, resulting in missing these crucial topological boundary states. In this work, we systematically investigate the robustness of bulk-boundary correspondence in the quantum spin Hall insulator via recently introduced feature spectrum topology. Our findings present a comprehensive understanding of feature-energy duality, illustrating that the aggregate number of gapless edge states in the energy-momentum ($\it{E-k}$) map and the non-trivial edge states in the $\hat{S}_z$ feature spectrum equals the spin Chern number of multilayer quantum spin Hall insulator. We identify a van der Waals material bismuth bromide $\rm(Bi_4Br_4)$ as a promising candidate through first-principles calculations. Our work not only unravels the intricacies of bulk-boundary correspondence but also charts a course for exploring quantum spin Hall insulators with high spin-Chern number.
title Feature-energy duality of topological boundary states in multilayer quantum spin Hall insulator
topic Materials Science
url https://arxiv.org/abs/2312.11794