Affiliation:
1. Max Planck Institute for Nuclear Physics
2. Institute for Corpuscular Physics
3. Heidelberg University
Abstract
We study the impact of gravitational waves originating from a first
order phase transition on structure formation. To do so, we perform a
second order perturbation analysis in the 1+31+3
covariant framework and derive a wave equation in which second order,
adiabatic density perturbations of the photon-baryon fluid are sourced
by the gravitational wave energy density during radiation domination and
on sub-horizon scales. The scale on which such waves affect the energy
density perturbation spectrum is found to be proportional to the horizon
size at the time of the phase transition times its inverse duration.
Consequently, structure of the size of galaxies and bigger can only be
affected in this way by relatively late phase transitions at
\ge 10^{6}\,\text{s}≥106s.
Using cosmic variance as a bound we derive limits on the strength
\alphaα
and the relative duration (\beta/H_*)^{-1}(β/H*)−1
of phase transitions as functions of the time of their occurrence which
results in a new exclusion region for the energy density in
gravitational waves today. We find that the cosmic variance bound
forbids only relative long lasting phase transitions,
e.g. \beta/H_*\lesssim 6.8β/H*≲6.8
for t_*\approx 5\times10^{11}\,\text{s}t*≈5×1011s,
which exhibit a substantial amount of supercooling
\alpha>20α>20
to affect the matter power spectrum.
Funder
Deutsche Forschungsgemeinschaft
Generalitat Valenciana
Ministerio de Economía y Competitividad
Subject
General Physics and Astronomy
Cited by
3 articles.
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