Heating up the cold bounce
arXiv:hep-th/0406098 · doi:10.1088/0264-9381/21/17/010
Abstract
Self-dual string cosmological models provide an effective example of bouncing solutions where a phase of accelerated contraction smoothly evolves into an epoch of decelerated Friedmann--Robertson--Walker expansion dominated by the dilaton. While the transition to the expanding regime occurs at sub-Planckian curvature scales, the Universe emerging after the bounce is cold, with sharply growing gauge coupling. However, since massless gauge bosons (as well as other massless fields) are super-adiabatically amplified, the energy density of the maximally amplified modes re-entering the horizon after the bounce can efficiently heat the Universe. As a consequence the gauge coupling reaches a constant value, which can still be perturbative.
28 pages, 13 figures
Cited by in corpus (17)
- Primordial backgrounds of relic gravitons
- Theoretical tools for CMB physics
- S-brane to thermal non-singular string cosmology
- Electric-magnetic duality and the conditions of inflationary magnetogenesis
- Dynamical back-reaction of relic gravitons
- Fluctuations of inflationary magnetogenesis
- Inflationary susceptibilities, duality and large-scale magnetic fields generation
- Vector fluctuations from multidimensional curvature bounces
- Inflationary magnetogenesis, derivative couplings and relativistic Van der Waals interactions
- The symmetries of inflationary magnetogenesis and the plasma initial conditions
- Averaged Energy Conditions and Bouncing Universes
- Stringy bounces and gradient instabilities
- Rotational inhomogeneities from pre-big bang?
- Fluid phonons and inflaton quanta at the protoinflationary transition
- Production of photons in a bouncing universe
- Curvature perturbations from dimensional decoupling
- Spectator Higgs, large-scale gauge fields and the non-minimal coupling to gravity