English

Gate-Tunable Ambipolar Josephson Current in a Topological Insulator

Mesoscale and Nanoscale Physics 2026-04-28 v1 Superconductivity

Abstract

Dirac surface states in a topological insulator (TI) with proximity-induced superconductivity offer a promising platform for realizing topological superconductivity and Majorana physics. However, in TIs, the Josephson effect is usually observed in regimes where transport is dominated by either substantial bulk conduction channels or unipolar surface states. In this work, we demonstrate gate-tunable ambipolar Josephson current in lateral Josephson junction (JJ) devices based on bulk-insulating (Bi,Sb)2Te3 thin films grown by molecular beam epitaxy (MBE). For thinner films, the supercurrent exhibits pronounced gate-tunable ambipolar behavior and is significantly suppressed as the chemical potential approaches the Dirac point, yet persists across it. In contrast, thicker films exhibit a much weaker ambipolar response. Moreover, we find that the supercurrent becomes significantly less resilient to external magnetic fields when the chemical potential is tuned near the Dirac point in both thickness regimes. Our numerical simulations demonstrate the ambipolar behavior of these TI JJ devices and attribute the asymmetric supercurrent observed in thicker TI films to the coexistence of Dirac surface states and bulk conduction channels. The demonstration of gate-tunable ambipolar Josephson transport in MBE-grown TI films paves the way for realizing Dirac-surface-state-mediated topological superconductivity and establishes a foundation for future exploration of electrically tunable Majorana modes.

Keywords

Cite

@article{arxiv.2509.05587,
  title  = {Gate-Tunable Ambipolar Josephson Current in a Topological Insulator},
  author = {Bomin Zhang and Xiaoda Liu and Junjie Qi and Ling-Jie Zhou and Deyi Zhuo and Han Tay and Hongtao Rong and Annie G. Wang and Zhiyuan Xi and Chao-Xing Liu and Chui-Zhen Chen and Cui-Zu Chang},
  journal= {arXiv preprint arXiv:2509.05587},
  year   = {2026}
}

Comments

26 pages, 4 figures, comments are welcome

R2 v1 2026-07-01T05:24:07.075Z