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Phase equilibration in bubble collisions

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arxiv hep-ph/9501266 v1 pith:BTDFGYES submitted 1995-01-11 hep-ph astro-ph

Phase equilibration in bubble collisions

classification hep-ph astro-ph
keywords phasebubblebubblescollisionconductivitydetermineddifferenceequilibration
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the context of an Abelian gauge symmetry, spontaneously broken at a first-order transition, we discuss the evolution of the phase difference between the Higgs fields in colliding bubbles. We show that the effect of dissipation, represented by a finite plasma conductivity, is to cause the phases to equlibrate on a time-scale, determined by the conductivity, which can be much smaller than the bubble radii at the time of collision. Currents induced during the phase equilibration generate a magnetic flux, which is determined by the initial phase difference. In a three-bubble collision, the fluxes produced by each pair of bubbles combine, and a vortex can be formed. We find that, under most conditions, the probability of trapping magnetic flux to form a vortex is correctly given by the ``geodesic rule''.

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  1. Bubble dynamics and vortex formation in holographic first-order superfluid phase transitions

    hep-th 2026-04 unverdicted novelty 7.0

    Holographic simulations of first-order superfluid transitions reveal that three-bubble collisions produce annihilating vortex-antivortex pairs whose lifetime scales logarithmically near critical radii, deviating from ...