Topological quantum phase transition from mirror to time reversal symmetry protected topological insulator

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Abstract

Topological insulators constitute a new phase of matter protected by symmetries. Time-reversal symmetry protects strong topological insulators of the Z2 class, which possess an odd number of metallic surface states with dispersion of a Dirac cone. Topological crystalline insulators are merely protected by individual crystal symmetries and exist for an even number of Dirac cones. Here, we demonstrate that Bi-doping of Pb1-x Sn x Se (111) epilayers induces a quantum phase transition from a topological crystalline insulator to a Z2 topological insulator. This occurs because Bi-doping lifts the fourfold valley degeneracy and induces a gap at Γ, while the three Dirac cones at the M points of the surface Brillouin zone remain intact. We interpret this new phase transition as caused by a lattice distortion. Our findings extend the topological phase diagram enormously and make strong topological insulators switchable by distortions or electric fields.

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Mandal, P. S., Springholz, G., Volobuev, V. V., Caha, O., Varykhalov, A., Golias, E., … Sánchez-Barriga, J. (2017). Topological quantum phase transition from mirror to time reversal symmetry protected topological insulator. Nature Communications, 8(1). https://doi.org/10.1038/s41467-017-01204-0

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