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Bubble wall velocity from number density current in (non)equilibrium
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Cosmological first-order phase transitions (FOPTs) serve as comprehensive probes into our early Universe with associated generations of stochastic gravitational waves and superhorizon curvature perturbations or even primordial black holes. In characterizing the FOPT, phenomenological parameters like transition temperatures, strength factors, bubble separations, and energy budgets can be easily extracted from the macroscopic equilibrium features of the underlying particle physics models except for the terminal wall velocity of the bubble expansion, making it the last key parameter to be determined most difficultly due to the non-equilibrium nature of the microscopic transition model. In this paper, we propose a new model-independent approach to calculate the bubble wall velocity by virtue of an extra junction condition from the conservation and violation of the total number density current across the shock front (if any) and bubble wall, respectively.
Forward citations
Cited by 3 Pith papers
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Electroweak Phase Transition and Bubble Wall Velocity in Local Thermal Equilibrium
Bubble wall velocities in local thermal equilibrium are computed for three BSM models and found to be nearly universal when expressed via the critical temperature and supercooling, with only deflagration solutions.
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Dynamics of a Higgs phase transition in the Klebanov-Witten theory
In the holographic Klebanov-Witten plasma, D5-brane bubbles nucleate with a preferred flux that grows as 1/(T-Tc)^2, and their walls move at speeds below the conformal sound speed.
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The Bubble Wall Velocity in Local Thermal Equilibrium and Energy Budget with Full Effective Potential
Using the full one-loop effective potential with the LTE approximation, the authors find that for xSM deflagration, bag-model gravitational wave peak predictions can differ by up to 48% in frequency and 90% in amplitu...
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