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Vortex motion quantifies strong dissipation in a holographic superfluid

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arxiv 2011.12968 v1 pith:SUCG7TYX submitted 2020-11-25 hep-th cond-mat.quant-gasphysics.flu-dyn

Vortex motion quantifies strong dissipation in a holographic superfluid

classification hep-th cond-mat.quant-gasphysics.flu-dyn
keywords holographicsuperfluidvortexcoupleddynamicscorrespondingdeterminedissipation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Holographic duality provides a description of strongly coupled quantum systems in terms of weakly coupled gravitational theories in a higher-dimensional space. It is a challenge, however, to quantitatively determine the physical parameters of the quantum systems corresponding to generic holographic theories. Here, we address this problem for the two-dimensional holographic superfluid, known to exhibit strong dissipation. We numerically simulate the motion of a vortex dipole and perform a high-precision matching of the corresponding dynamics resulting from the dissipative Gross-Pitaevskii equation. Excellent agreement is found for the vortex core shape and the spatio-temporal trajectories. A further comparison to the Hall-Vinen-Iordanskii equations for point vortices interacting with the superfluid allows us to determine the friction parameters of the holographic superfluid. Our results suggest that holographic vortex dynamics can be applied to experimentally accessible superfluids like strongly coupled ultracold Bose gases or thin helium films with temperatures in the Kelvin range. This would make holographic far-from-equilibrium dynamics and turbulence amenable to experimental tests.

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  1. Quantum Mpemba effect in holography

    hep-th 2026-07 conditional novelty 5.0

    In a holographic superfluid, quenching from stronger symmetry breaking relaxes faster to equilibrium, with the slowest decay mode suppressed and the second mode amplified.