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We investigate Josephson transport in a fully closed, two-dimensional superfluid circuit formed by a ring-shaped Rb 87 Bose-Einstein condensate that contains two optical barriers acting as movable weak links. Translating these barriers at controlled speeds imposes a steady bias current, enabling direct mapping of the current-chemical-potential ( I − Δ μ ) characteristics. For narrow junctions ( w ≈ 1 µ m ), the circuit exhibits a pronounced dc branch that terminates at a critical current I c = 9 ( 1 ) × 10 3 s − 1 ; above this threshold, the system switches to an ac, resistive regime. Classical-field simulations that include the moving barriers quantitatively reproduce both the nonlinear I − Δ μ curve and the measured I c , validating the underlying microscopic picture. Analysis of the ensuing phase dynamics shows that dissipation is mediated by the nucleation and traversal of vortex-antivortex pairs through the junctions, while the bulk condensate remains globally phase locked—direct evidence of the ring's topological constraint enforcing quantized circulation. These results establish a cold-atom analog of a superconducting quantum interference device in which Josephson dynamics can be resolved at the single-vortex level, providing a versatile platform for atomtronic circuit elements, nonreciprocal Josephson devices, and on-chip Sagnac interferometers for multiaxis rotation sensing.
Gan et al. (Mon,) studied this question.