English

Cosmological Consequences of Slow-Moving Bubbles in First-Order Phase Transitions

High Energy Physics - Phenomenology 2009-10-31 v2 Astrophysics

Abstract

In cosmological first-order phase transitions, the progress of true-vacuum bubbles is expected to be significantly retarded by the interaction between the bubble wall and the hot plasma. We examine the evolution and collision of slow-moving true-vacuum bubbles. Our lattice simulations indicate that phase oscillations, predicted and observed in systems with a local symmetry and with a global symmetry where the bubbles move at speeds less than the speed of light, do not occur inside collisions of slow-moving local-symmetry bubbles. We observe almost instantaneous phase equilibration which would lead to a decrease in the expected initial defect density, or possibly prevent defects from forming at all. We illustrate our findings with an example of defect formation suppressed in slow-moving bubbles. Slow-moving bubble walls also prevent the formation of `extra defects', and in the presence of plasma conductivity may lead to an increase in the magnitude of any primordial magnetic field formed.

Keywords

Cite

@article{arxiv.hep-ph/9908398,
  title  = {Cosmological Consequences of Slow-Moving Bubbles in First-Order Phase Transitions},
  author = {Anne-Christine Davis and Matthew Lilley},
  journal= {arXiv preprint arXiv:hep-ph/9908398},
  year   = {2009}
}

Comments

10 pages, 7 figures, replaced with typos corrected and reference added. To appear in Phys. Rev. D