English

Stabilizing persistent currents in an atomtronic Josephson junction necklace

Quantum Gases 2023-11-10 v1 Quantum Physics

Abstract

Arrays of Josephson junctions are at the forefront of research on quantum circuitry for quantum computing, simulation and metrology. They provide a testing bed for exploring a variety of fundamental physical effects where macroscopic phase coherence, nonlinearities and dissipative mechanisms compete. Here we realize finite-circulation states in an atomtronic Josephson junction necklace, consisting of a tunable array of tunneling links in a ring-shaped superfluid. We study the stability diagram of the atomic flow by tuning both the circulation and the number of junctions. We predict theoretically and demonstrate experimentally that the atomic circuit withstands higher circulations (corresponding to higher critical currents) by increasing the number of Josephson links. The increased stability contrasts with the trend of the superfluid fraction -- quantified by Leggett's criterion -- which instead decreases with the number of junctions and the corresponding density depletion. Our results demonstrate atomic superfluids in mesoscopic structured ring potentials as excellent candidates for atomtronics applications, with prospects towards the observation of non-trivial macroscopic superpositions of current states.

Keywords

Cite

@article{arxiv.2311.05523,
  title  = {Stabilizing persistent currents in an atomtronic Josephson junction necklace},
  author = {Luca Pezzè and Klejdja Xhani and Cyprien Daix and Nicola Grani and Beatrice Donelli and Francesco Scazza and Diego Hernandez-Rajkov and Woo Jin Kwon and Giulia Del Pace and Giacomo Roati},
  journal= {arXiv preprint arXiv:2311.05523},
  year   = {2023}
}

Comments

8 pages, 4 figures plus supplementary information

R2 v1 2026-06-28T13:16:29.358Z