English

Maximal temperature of strongly-coupled dark sectors

High Energy Physics - Phenomenology 2023-06-02 v2 Cosmology and Nongalactic Astrophysics

Abstract

Taking axion inflation as an example, we estimate the maximal temperature (TmaxT_{\rm max}^{ }) that can be reached in the post-inflationary universe, as a function of the confinement scale of a non-Abelian dark sector (ΛIR\Lambda_{\rm IR}^{ }). Below a certain threshold ΛIR<Λ02×108mpl\Lambda_{\rm IR}^{ } < \Lambda_{\rm 0}^{ } \sim 2\times 10^{-8}_{ } m_{\rm pl}^{ }, the system heats up to TmaxΛ0>TcT_{\rm max}^{ } \sim \Lambda_{\rm 0}^{ } > T_{\rm c}^{ }, and a first-order thermal phase transition takes place. On the other hand, if ΛIR>Λ0\Lambda_{\rm IR}^{ } > \Lambda_{\rm 0}^{ }, then TmaxΛIR<TcT_{\rm max}^{ } \sim \Lambda_{\rm IR}^{ } < T_{\rm c}^{ }: very high temperatures can be reached, but there is no phase transition. If the inflaton thermalizes during heating-up (which we find to be unlikely), or if the plasma includes light degrees of freedom, then heat capacity and entropy density are larger, and TmaxT_{\rm max}^{ } is lowered towards Λ0\Lambda_{\rm 0}^{ }. The heating-up dynamics generates a gravitational wave background. Its contribution to NeffN^{ }_{\rm eff} at GHz frequencies, the presence of a monotonic f03\sim f_{\rm 0}^3 shape at (104102)(10^{-4}_{ } - 10^2_{ })\,Hz frequencies, and the frequency domain of peaked features that may originate via first-order phase transitions, are discussed.

Keywords

Cite

@article{arxiv.2303.17973,
  title  = {Maximal temperature of strongly-coupled dark sectors},
  author = {H. Kolesova and M. Laine and S. Procacci},
  journal= {arXiv preprint arXiv:2303.17973},
  year   = {2023}
}

Comments

21 pages. v2: clarifications added