English

Proposals for realizing a Josephson diode in Atomtronic circuits

Quantum Gases 2025-11-25 v1

Abstract

The Josephson diode, a non-reciprocal quantum element analogous to the familiar semiconductor p-n junction diode, has been realized in solid-state systems but remains unexplored in tunable atomtronic circuits. In this work, we propose and numerically demonstrate the realization of the Josephson diode effect in an atomtronic circuit consisting of a ring-shaped Bose-Einstein condensate and with optical barriers serving as Josephson junctions. Our implementation of this macroscopic non-reciprocal quantum phenomenon is based on realizing the required inversion symmetry breaking through asymmetric barrier placement and an asymmetric alternating current (AC) drive, enabling position- and drive-tunable diode effects with efficiencies up to 15% and 91%, respectively. While standard time-of-flight absorption imaging can readily observe these effects, we employ cavity optomechanics for in situ, real-time, and non-destructive measurements of the relevant condensate dynamics. Our results establish a highly tunable platform for nonreciprocal Josephson transport, opening avenues for diode-based neutral-atom technologies in future quantum circuits.

Keywords

Cite

@article{arxiv.2511.18091,
  title  = {Proposals for realizing a Josephson diode in Atomtronic circuits},
  author = {Nalinikanta Pradhan and Rina Kanamoto and M. Bhattacharya and Pankaj Kumar Mishra},
  journal= {arXiv preprint arXiv:2511.18091},
  year   = {2025}
}

Comments

4 Figures, 7 pages, supplemntary materials

R2 v1 2026-07-01T07:50:17.062Z