Quasiparticle scattering in three-dimensional topological insulators near the thickness limit
arXiv:2401.11157 · doi:10.1103/PhysRevB.109.115414
Abstract
In the ultra-thin regime, Bi2Te3 films feature two surfaces (with each surface being a two-dimensional Dirac-fermion system) with complicated spin textures and a tunneling term between them. We find in this regime that the quasiparticle scattering is completely different compared with the thick-film case and even behaves differently at each thickness. The thickness-dependent warping effect and tunneling term are found to be the two main factors that govern the scattering behaviors. The inter-band back-scattering that signals the existence of a tunneling term is found to disappear at 4 quintuple layers by the step-edge reflection approach. A four-band model is presented that captures the main features of the thickness-dependent scattering behaviors. Our work clarifies that the prohibition of back-scattering guaranteed by symmetry in topological insulators breaks down in the ultra-thin regime.
31 pages, 13 figures including the supplementary materials
References in corpus (6)
- Discovery (theoretical prediction and experimental observation) of a large-gap topological-insulator class with spin-polarized single-Dirac-cone on the surface
- Topological Surface States Protected From Backscattering by Chiral Spin Texture
- Finite size effects of helical edge states in HgTe/CdTe quantum wells
- Transmission of topological surface states through surface barriers
- Spectroscopic Imaging Scanning Tunneling Microscopy as a Probe of Orbital Structures and Ordering
- Selective Trapping of Hexagonally Warped Topological Surface States in a Triangular Quantum Corral