Gate-Tunable Transport in Quasi-One-Dimensional α-Bi<sub>4</sub>I<sub>4</sub> Field Effect Transistors.

Liu, Yulu; Chen, Ruoyu; Zhang, Zheneng; Bockrath, Marc; Lau, Chun Ning; Zhou, Yan-Feng; Yoon, Chiho; Li, Sheng et al. · Nano Lett · 2022

basic_science · Level V

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Abstract

Bi<sub>4</sub>I<sub>4</sub> belongs to a novel family of quasi-one-dimensional (1D) topological insulators (TIs). While its β phase was demonstrated to be a prototypical weak TI, the α phase, long thought to be a trivial insulator, was recently predicted to be a rare higher order TI. Here, we report the first gate tunable transport together with evidence for unconventional band topology in exfoliated α-Bi<sub>4</sub>I<sub>4</sub> field effect transistors. We observe a Dirac-like longitudinal resistance peak and a sign change in the Hall resistance; their temperature dependences suggest competing transport mechanisms: a hole-doped insulating bulk and one or more gate-tunable ambipolar boundary channels. Our combined transport, photoemission, and theoretical results indicate that the gate-tunable channels likely arise from novel gapped side surface states, two-dimensional (2D) TI in the bottommost layer, and/or helical hinge states of the upper layers. Markedly, a gate-tunable supercurrent is observed in an α-Bi<sub>4</sub>I<sub>4</sub> Josephson junction, underscoring the potential of these boundary channels to mediate topological superconductivity.