We investigate the possibility of using structural disorder to induce a topological phase in a solid state system. Using first-principles calculations, we introduce structural disorder in the trivial insulator BiTeI and observe the emergence of a topological insulating phase. By modifying the bonding environments, the crystal-field splitting is enhanced and the spin-orbit interaction produces a band inversion in the bulk electronic structure. Analysis of the Wannier charge centers and the surface electronic structure reveals a strong topological insulator with Dirac surface states. Finally, we propose a prescription for inducing topological states from disorder in crystalline materials. Understanding how local environments produce topological phases is a key step for predicting disordered and amorphous topological materials.
@article{arxiv.2010.07456,
title = {Structural disorder-driven topological phase transition in noncentrosymmetric BiTeI},
author = {Paul Corbae and Frances Hellman and Sinead M. Griffin},
journal= {arXiv preprint arXiv:2010.07456},
year = {2021}
}
Comments
12 pages (5 main, 7 supplemental) and 8 figures (3 main and 5 supplemental)