Towards temperature-induced topological phase transition in SnTe: A first principles study
Abstract
The temperature renormalization of the bulk band structure of a topological crystalline insulator, SnTe, is calculated using first principles methods. We explicitly include the effect of thermal-expansion-induced modification of electronic states and their band inversion on electron-phonon interaction. We show that the direct gap decreases with temperature, as both thermal expansion and electron-phonon interaction drive SnTe towards the phase transition to a topologically trivial phase as temperature increases. The band gap renormalization due to electron-phonon interaction exhibits a non-linear dependence on temperature as the material approaches the phase transition, while the lifetimes of the conduction band states near the band edge show a non-monotonic behavior with temperature. These effects should have important implications on bulk electronic and thermoelectric transport in SnTe and other topological insulators.
Cite
@article{arxiv.2004.11959,
title = {Towards temperature-induced topological phase transition in SnTe: A first principles study},
author = {José D. Querales-Flores and Pablo Aguado-Puente and Đorđe Dangić and Jiang Cao and Piotr Chudzinski and Tchavdar N. Todorov and Myrta Grüning and Stephen Fahy and Ivana Savić},
journal= {arXiv preprint arXiv:2004.11959},
year = {2020}
}
Comments
10 pages, 8 figures. Accepted for publication in Phys. Rev. B on June 8, 2020