English

Observational Constraints on Warm Natural Inflation

General Relativity and Quantum Cosmology 2023-03-08 v2 Cosmology and Nongalactic Astrophysics High Energy Physics - Theory

Abstract

Warm natural inflation is studied for the case of the original cosine potential. The radiation bath during inflation induces a dissipation (friction) rate in the equation of motion for the inflaton field, which can potentially reduce the field excursion needed for an observationally viable period of inflation. We examine if the dissipation thus provides a mechanism to avoid the large decay constant fMplf \gtrsim M_{\mathrm{pl}} of cold cosine natural inflation. Whereas temperature independent dissipation has previously been shown to alleviate the need for a trans-Planckian decay constant ff, we illustrate here the difficulties of accommodating a significantly sub-Planckian decay constant (f<101Mplf<10^{-1}M_{\mathrm{pl}}) in the case of the following temperature dependent dissipation rates, ΓTc\Gamma \propto T^c, with c={1,3}c=\{1,3\}. Such dissipation rates represent physically well-motivated constructions in the literature. For each model, we map its location in the rr-nsn_s plane and compare with Cosmic Microwave Background data. For c=1(c=3)c=1 \, (c=3), we find that agreement with CMB data requires that dissipation be in the weak (moderate) regime and that the minimum allowed value of the decay constant in the potential is fmin=0.3(0.8)Mplf_{\rm min} = 0.3 \, (0.8)\,M_{\mathrm{pl}} respectively.

Keywords

Cite

@article{arxiv.2212.04482,
  title  = {Observational Constraints on Warm Natural Inflation},
  author = {Gabriele Montefalcone and Vikas Aragam and Luca Visinelli and Katherine Freese},
  journal= {arXiv preprint arXiv:2212.04482},
  year   = {2023}
}

Comments

23 pages, 3 figures, 1 table, Replacement due to typo on DOE acknowledgement number

R2 v1 2026-06-28T07:26:38.063Z