Symmetry-protected topological crystalline insulators (TCIs) have primarily been characterized by their gapless boundary states. However, in time-reversal- (T-) invariant (helical) 3D TCI\unicodex2014termed higher-order TCIs (HOTIs)\unicodex2014the boundary signatures can manifest as a sample-dependent network of 1D hinge states. We here introduce nested spin-resolved Wilson loops and layer constructions as tools to characterize the intrinsic bulk topological properties of spinful 3D insulators. We discover that helical HOTIs realize one of three spin-resolved phases with distinct responses that are quantitatively robust to large deformations of the bulk spin-orbital texture: 3D quantum spin Hall insulators (QSHIs), "spin-Weyl" semimetals, and T-doubled axion insulator (T-DAXI) states with nontrivial partial axion angles indicative of a 3D spin-magnetoelectric bulk response and half-quantized 2D TI surface states originating from a partial parity anomaly. Using ab-initio calculations, we demonstrate that β-MoTe2 realizes a spin-Weyl state and that α-BiBr hosts both 3D QSHI and T-DAXI regimes.
@article{arxiv.2207.10099,
title = {Spin-Resolved Topology and Partial Axion Angles in Three-Dimensional Insulators},
author = {Kuan-Sen Lin and Giandomenico Palumbo and Zhaopeng Guo and Yoonseok Hwang and Jeremy Blackburn and Daniel P. Shoemaker and Fahad Mahmood and Zhijun Wang and Gregory A. Fiete and Benjamin J. Wieder and Barry Bradlyn},
journal= {arXiv preprint arXiv:2207.10099},
year = {2024}
}
Comments
Final version: 22+146 pages, 8+44 figures. Nested and spin-resolved Wilson loop code with example scripts and documentation freely available at https://github.com/kuansenlin/nested_and_spin_resolved_Wilson_loop