Shear-resistant topology in quasi one-dimensional van der Waals material BiBr
arXiv:2411.13320 · doi:10.1103/tdp5-wmqc
Abstract
BiBr is a prototypical quasi one-dimensional (1D) material in which covalently bonded bismuth bromide chains are arranged in parallel, side-by-side and layer-by-layer, with van der Waals (vdW) gaps in between. So far, two different structures have been reported for this compound, -BiBr and -BiBr , in both of which neighboring chains are shifted by , i.e., half a unit cell vector in the plane, but which differ in their vertical stacking. While the different layer arrangements are known to result in distinct electronic properties, the effect of possible in-plane shifts between the atomic chains remains an open question. Here, using scanning tunneling microscopy and spectroscopy (STM/STS), we report a new BiBr(001) structure, with a shift of between neighboring chains in the plane and AB layer stacking. We determine shear strain to be the origin of this new structure, which can readily result in shifts of neighboring atomic chains because of the weak inter-chain bonding. For the observed structure, the (residual) atomic chain shift corresponds to an in-plane shear strain of . STS reveals a bulk insulating gap and metallic edge states at surface steps, indicating that the new structure is also a higher-order topological insulator, just like -BiBr, in agreement with density functional theory (DFT) calculations.
9 pages, 5 figures, + Supplement
References in corpus (7)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Large-Gap Quantum Spin Hall Insulator in single layer bismuth monobromide BiBr
- Topological edge states in single- and multi-layer BiBr
- Band Bending and Valence Band Quantization at Line Defects in MoS
- Topological electronic structure and spin texture of quasi-one-dimensional higher-order topological insulator Bi4Br4
- Transport response of topological hinge modes in -BiBr