Physical Review A · 2013 · 30 citations · 28 references
Quantum LiquidQuantum SciencePersistent CurrentsSpin-population ImbalanceEngineeringQuantum ComputingPhysicsCondensate AnnulusNatural SciencesQuantum OpticApplied PhysicsCondensed Matter PhysicsUltracold AtomQuantum EntanglementBose-einstein CondensationStable Superflow
Motivated by a recent experiment [Beattie, Moulder, Fletcher, and Hadzibabic, Phys. Rev. Lett. 110, 025301 (2013)], we study the superflow of atomic spinor Bose-Einstein condensates optically trapped in a ring-shaped geometry. Within a dissipative mean-field approach we simulate a two-component condensate in conditions adapted to the experiment. In qualitative agreement with the experimental findings, we observe stable superflow if the spin-population imbalance is above some well-defined threshold value. Below the stability threshold the persistent currents with higher-order circulation decay in quantized steps, and the vortex lines escape from the center of the ring through dynamically created ``weak links'' in the condensate annulus. These regions with reduced density of one spin component are filled by atoms of the other component. The vortices then leave the ring-shaped high-density region of the condensate and finally decay into elementary excitations.
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Driving Phase Slips in a Superfluid Atom Circuit with a Rotating Weak Link
Kevin Wright, R. B. Blakestad, C. J. Lobb et al. · Physical Review Letters · 2013 · 326 citations · Full text
Quantized supercurrent decay in an annular Bose-Einstein condensate
Stuart Moulder, Scott Beattie, Robert P. Smith et al. · Physical Review A · 2012 · 234 citations · Full text