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Diffused vorticity and moment of inertia of a spin-orbit coupled Bose-Einstein condensate

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arxiv 1609.04694 v2 pith:7LGEW6SL submitted 2016-09-15 cond-mat.quant-gas

classification cond-mat.quant-gas
keywords inertiamomentspin-orbitcouplingrigidbose-einsteincasecondensate
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abstract

By developing the hydrodynamic theory of spinor superfluids we calculate the moment of inertia of a harmonically trapped Bose-Einstein condensate with spin-orbit coupling. We show that the velocity field associated with the rotation of the fluid exhibits diffused vorticity, in contrast to the irrotational behavior characterizing a superfluid. Both Raman-induced and Rashba spin-orbit couplings are considered. In the first case the moment of inertia takes the rigid value at the transition between the plane wave and the single minimum phase, while in the latter case the rigid value is achieved in the limit of isotropic Rashba coupling. A procedure to generate the rigid rotation of the fluid and to measure the moment of inertia is proposed. The quenching of the quantum of circulation $h/m$, caused by Raman induced spin-orbit coupling in a toroidal geometry, is also discussed.

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  1. Thermodynamics of spin-orbit coupled bosons in two dimensions from complex Langevin

    cond-mat.quant-gas 2019-08 conditional novelty 6.0 of 10

    A complex Langevin simulation of 2D spin-orbit coupled bosons gives a density equation of state where mean-field underestimates density and spin-orbit coupling suppresses pseudo-condensation.

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