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arXiv · 1708.07014

Probing Spin Helical Surface States in Topological HgTe Nanowires

Abstract

Nanowires with helical surface states represent key prerequisites for observing and exploiting phase-coherent topological conductance phenomena, such as spin-momentum locked quantum transport or topological superconductivity. We demonstrate in a joint experimental and theoretical study that gated nanowires fabricated from high-mobility strained HgTe, known as a bulk topological insulator, indeed preserve the topological nature of the surface states, that moreover extend phase-coherently across the entire wire geometry. The phase-coherence lengths are enhanced up to 5 $μ$m when tuning the wires into the bulk gap, so as to single out topological transport. The nanowires exhibit distinct conductance oscillations, both as a function of the flux due to an axial magnetic field, and of a gate voltage. The observed $h/e$-periodic Aharonov-Bohm-type modulations indicate surface-mediated quasi-ballistic transport. Furthermore, an in-depth analysis of the scaling of the observed gate-dependent conductance oscillations reveals the topological nature of these surface states. To this end we combined numerical tight-binding calculations of the quantum magneto-conductance with simulations of the electrostatics, accounting for the gate-induced inhomogenous charge carrier densities around the wires. We find that helical transport prevails even for strongly inhomogenous gating and is governed by flux-sensitive high-angular momentum surface states that extend around the entire wire circumference.

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Johannes Ziegler, Raphael Kozlovsky, Cosimo Gorini, Ming-Hao Liu, Sabine Weishäupl, Hubert Maier, Ralf Fischer, Dmitriy A. Kozlov, Ze Don Kvon, Nikolay N. Mikhailov, Sergey A. Dvoretsky, Klaus Richter, Dieter Weiss. 2017-12-11. Probing Spin Helical Surface States in Topological HgTe Nanowires. https://doi.org/10.1103/physrevb.97.035157

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