Quantum vortex channels as Josephson junctions

Fuente: arXiv
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Auteurs principaux: Masalaeva, Natalia, Kirkby, Wyatt, Ferlaino, Francesca, Bisset, Russell N.
Format: Preprint
Publié: 2026
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author Masalaeva, Natalia
Kirkby, Wyatt
Ferlaino, Francesca
Bisset, Russell N.
author_facet Masalaeva, Natalia
Kirkby, Wyatt
Ferlaino, Francesca
Bisset, Russell N.
contents In quantum gases, weak links are typically realized with externally imposed optical potentials. We show that, in rotating binary condensates, quantized vortices in one component form hollow channels that act as self-induced weak links for the other, enabling superflow through otherwise impenetrable, phase-separated domains. This introduces a novel barrier mechanism: quantum pressure creates an effective barrier inside the vortex channel, set by the constriction width, which controls the superflow. Tuning the interspecies interaction strength drives a crossover from the hydrodynamic transport to Josephson tunneling regime. Long-range dipolar interactions further tune the weak-link properties, enabling both short links and two coupled junctions in series. Circuit models quantitatively capture the dc current-phase relations for both configurations. These results establish vortices as reconfigurable, interaction-controlled Josephson elements in superfluids.
format Preprint
id arxiv_https___arxiv_org_abs_2602_01889
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum vortex channels as Josephson junctions
Masalaeva, Natalia
Kirkby, Wyatt
Ferlaino, Francesca
Bisset, Russell N.
Quantum Gases
Quantum Physics
In quantum gases, weak links are typically realized with externally imposed optical potentials. We show that, in rotating binary condensates, quantized vortices in one component form hollow channels that act as self-induced weak links for the other, enabling superflow through otherwise impenetrable, phase-separated domains. This introduces a novel barrier mechanism: quantum pressure creates an effective barrier inside the vortex channel, set by the constriction width, which controls the superflow. Tuning the interspecies interaction strength drives a crossover from the hydrodynamic transport to Josephson tunneling regime. Long-range dipolar interactions further tune the weak-link properties, enabling both short links and two coupled junctions in series. Circuit models quantitatively capture the dc current-phase relations for both configurations. These results establish vortices as reconfigurable, interaction-controlled Josephson elements in superfluids.
title Quantum vortex channels as Josephson junctions
topic Quantum Gases
Quantum Physics
url https://arxiv.org/abs/2602.01889