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Cosmological bubble friction in local equilibrium
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In first-order cosmological phase transitions, the asymptotic velocity of expanding bubbles is of crucial relevance for predicting observables like the spectrum of stochastic gravitational waves, or for establishing the viability of mechanisms explaining fundamental properties of the universe such as the observed baryon asymmetry. In these dynamic phase transitions, it is generally accepted that subluminal bubble expansion requires out-of-equilibrium interactions with the plasma which are captured by friction terms in the equations of motion for the scalar field. This has been disputed in works pointing out subluminal velocities in local equilibrium arising either from hydrodynamic effects in deflagrations or from the entropy change across the bubble wall in general situations. We argue that both effects are related and can be understood from the conservation of the entropy of the degrees of freedom in local equilibrium, leading to subluminal speeds for both deflagrations and detonations. The friction effect arises from the background field dependence of the entropy density in the plasma, and can be accounted for by simply imposing local conservation of stress-energy and including field dependent thermal contributions to the effective potential. We illustrate this with explicit calculations of dynamic and static bubbles for a first-order electroweak transition in a Standard Model extension with additional scalar fields.
Forward citations
Cited by 3 Pith papers
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Scalar damping in cosmological phase transitions
The scalar damping coefficient in the hydrodynamic friction term is extracted from kinetic theory for SM-like plasmas, and the runaway-wall pressure is found to bound the local friction from above.
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Bubble velocities in local equilibrium from a pseudopotential
Terminal bubble-wall velocities in local equilibrium can be found by requiring degenerate minima of a field-only pseudopotential, avoiding scalar equations of motion and profile or equation-of-state assumptions.
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Entropy production at electroweak bubble walls from scalar field fluctuations
Scalar fluctuations produce a nonvanishing entropy discontinuity across an electroweak bubble wall even in the zero-friction limit, showing LTE-based wall velocity upper bounds cannot be saturated.
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