English

$4\pi$-periodic Josephson supercurrent in HgTe-based topological Josephson junctions

Mesoscale and Nanoscale Physics 2016-01-26 v2 Superconductivity

Abstract

The Josephson effect describes the generic appearance of a supercurrent in a weak link between two superconductors. Its exact physical nature however deeply influences the properties of the supercurrent. Detailed studies of Josephson junctions can reveal microscopic properties of the superconducting pairing (spin-triplet correlations, dd-wave symmetry) or of the electronic transport (quantum dot, ballistic channels). In recent years, considerable efforts have focused on the coupling of superconductors to topological insulators, in which transport is mediated by topologically protected Dirac surface states with helical spin polarization (while the bulk remains insulating). Here, the proximity of a superconductor is predicted to give rise to unconventional induced pp-wave superconductivity, with a doublet of topologically protected gapless Andreev bound states, whose energies varies 4π4\pi-periodically with the superconducting phase difference across the junction. In this article, we report the observation of an anomalous response to rf irradiation in a Josephson junction with a weak link of the 3D topological insulator HgTe. The response is understood as due to a 4π4\pi-periodic contribution to the supercurrent, and its amplitude is compatible with the expected contribution of a gapless Andreev doublet.

Keywords

Cite

@article{arxiv.1503.05591,
  title  = {$4\pi$-periodic Josephson supercurrent in HgTe-based topological Josephson junctions},
  author = {Jonas Wiedenmann and Erwann Bocquillon and Russell S. Deacon and Simon Hartinger and Oliver Herrmann and Teun M. Klapwijk and Luis Maier and Christopher Ames and Christoph Brüne and Charles Gould and Akira Oiwa and Koji Ishibashi and Seigo Tarucha and Hartmut Buhmann and Laurens W. Molenkamp},
  journal= {arXiv preprint arXiv:1503.05591},
  year   = {2016}
}

Comments

revised version, main text : 15 pages, 4 figures, supplementary information : 34 pages, 17 figures

R2 v1 2026-06-22T08:56:35.241Z