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(In)stability of symbiotic vortex-bright soliton in holographic immiscible binary superfluids

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arxiv 2409.08310 v1 pith:GF47XWHV submitted 2024-09-12 hep-th cond-mat.quant-gasnlin.PS

classification hep-thcond-mat.quant-gasnlin.PS
keywords solitonsymbioticvortex-brightvortexwindingcomponentinstabilitynumber
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Symbiotic vortex-bright soliton structures with non-trivial topological charge in one component are found to be robust in immiscibel two-component superfluids, due to the effective potential created by a stable vortex in the other component. We explore the properties of symbiotic vortex-bright soliton in strongly coupled binary superfluids by holography, which naturally incorporates finite temperature effect and dissipation. We show the dependence of the configuration on various parameters, including the winding number, temperature and inter-component coupling. We then study the (in)stability of symbiotic vortex-bright soliton by both the linear approach via quasi-normal modes and the full non-linear numerical simulation. Rich dynamics are found for the splitting patterns and dynamical transitions. Moreover, for giant symbiotic vortex-bright soliton structures with large winding numbers, the vortex splitting instability might be rooted in the Kelvin-Helmholtz instability. We also show that the second component in the vortex core could act as a stabilizer so as to suppress or even prevent vortex splitting instability. Such stabilization mechanism opens possibility for vortices with smaller winding number to merge into vortices with larger winding number, which is confirmed for the first time in our simulation.

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  1. Splitting dynamics of quantized composite vortices in holographic miscible binary superfluids

    hep-th 2025-01 conditional novelty 6.0 of 10

    Holographic simulations show that composite vortices in miscible binary superfluids split into singly quantized vortices with temperature-dependent instabilities and no persistent extra vortices.

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