English

Facet-selective ballistic supercurrent in a weak topological insulator

Mesoscale and Nanoscale Physics 2026-07-01 v1 Materials Science Superconductivity

Abstract

Topological superconductivity is widely pursued by inducing superconducting correlations in topologically protected boundary states. In two dimensions, this strategy has been realized using one-dimensional topological edge modes, but in three-dimensional crystals, spatially separated surface supercurrents confined to selected facets have not yet been achieved. Here we demonstrate facet-selective ballistic supercurrent in Josephson junctions based on the weak topological insulator ZrTe<sub>5</sub>. Superconducting quantum interferometry reveals SQUID-like critical current oscillations with flux-quantum periodicity, establishing that the supercurrent is spatially concentrated on specific crystallographic facets that host gapless topological surface states. Rotating the magnetic field yields markedly distinct interference patterns, linking the supercurrent distribution to the underlying bulk topology. The exponential temperature dependence of the critical current and triangular interference lobes provide signatures of ballistic transport due to high-transmission topological channels. These results establish weak topological insulators as a platform for facet-resolved superconducting devices and higher-order topological superconductivity.

Cite

@article{arxiv.2607.00683,
  title  = {Facet-selective ballistic supercurrent in a weak topological insulator},
  author = {Prasanna Rout and Ankit Khola and Lalit Pandey and Paolo Sessi and Xiaochun Huang and Ivo Cools and S. Galeski and Matthias Bode and Johan Åkerman and Floriana Lombardi and Thilo Bauch and Saroj P. Dash},
  journal= {arXiv preprint arXiv:2607.00683},
  year   = {2026}
}

Comments

12 pages, 5 figures

R2 v1 2026-07-22T20:20:11.375Z