Dynamics of Symmetry Breaking in FRW Cosmologies: Emergence of Scaling
D. Boyanovsky, H. J. de Vega

TL;DR
This paper studies the dynamics of symmetry breaking in FRW cosmologies, revealing a scaling regime where correlated regions grow with the horizon size, leading to a Bose-Einstein condensate and Harrison-Zeldovich spectrum.
Contribution
It introduces a detailed analysis of the time scales and scaling behavior during symmetry breaking in cosmology, connecting quantum fluctuations to large-scale structure formation.
Findings
Identification of three distinct time regimes in symmetry breaking dynamics.
Emergence of a scaling regime with correlation length proportional to the horizon.
Formation of a Bose-Einstein condensate with a Harrison-Zeldovich spectrum.
Abstract
The dynamics of a symmetry breaking phase transition is studied in a radiation and matter dominated spatially flat FRW cosmology in the large N limit of a scalar field theory.The quantum density matrix is evolved from an initial state of quasiparticles in thermal equilibrium at a temperature higher than the critical. The cosmological expansion decreases the temperature and triggers the phase transition. We identify three different time scales: an early regime dominated by linear instabilities and the exponential growth of long-wavelength fluctuations,an intermediate scale when the field fluctuations probe the broken symmetry states and an asymptotic scale wherein a scaling regime emerges for modes of wavelength comparable to or larger than the horizon.The scaling regime is characterized by a dynamical physical correlation length xi_{phys} = d_H(t) with d_H(t) the size of the causal…
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