Theory of Glide Symmetry Protected Helical Edge States in WTe<sub>2</sub> Monolayer
ORAL
Abstract
We theoretically investigate electronic and transport properties of QSH edge states in large gap 1-T' WTe2 monolayers. We explore the impact of edge termination, disorder, temperature, and interactions on experimentally addressable edge state observables, such as local density of states and conductance. We show that conductance quantization can remain surprisingly robust even for heavily disordered samples because of an anomalously small edge state decay length and additional protection related to the large direct gap allowed by glide symmetry. From the simulation of temperature-dependent resistance, we find that moderate disorder enhances the stability of conductance by localizing bulk states. We evaluate the edge state velocity and Luttinger liquid parameter as functions of the chemical potential, finding prospects for physics beyond linear helical Luttinger liquids in samples with ultra-clean and well-defined edges.
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Publication: arXiv:2209.09169
Presenters
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Maciej Bieniek
Wurzburg University
Authors
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Maciej Bieniek
Wurzburg University
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Jukka Vayrynen
Department of Physics and Astronomy, Purdue University, Purdue University
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Gang Li
ShanghaiTech University
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Titus Neupert
Univ of Zurich
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Ronny Thomale
Julius-Maximilians University of Wuerzburg, Julius-Maximilians University of Wuerzbu, Institut für Theoretische Physik und Astrophysik Universität Würzburg, 97074 Würzburg, Germany, University of Wuerzburg