English

Geometric reheating of the Universe

Cosmology and Nongalactic Astrophysics 2024-06-06 v1

Abstract

We study the post-inflationary energy transfer from the inflaton (ϕ\phi) into a scalar field (χ\chi) non-minimally coupled to gravity through ξRχ2\xi R|\chi|^2, considering models with inflaton potential VinfϕpV_{\rm inf} \propto |\phi|^{\,p} around ϕ=0\phi = 0. This corresponds to the paradigm of {\it geometric preheating}, which we extend to its non-linear regime via lattice simulations. Considering α\alpha-attractor T-model potentials as a proxy, we study the viability of proper {\it reheating} for p=2,4,6p=2, 4, 6, determining whether radiation domination (RD) due to energetic dominance of χ\chi over ϕ\phi, can be achieved. For large inflationary scales Λ\Lambda, reheating is frustrated for p=2p = 2, it can be partially achieved for p=4p = 4, and it becomes very efficient for p=6p = 6. Efficient reheating can be however blocked if χ\chi sustains self-interactions (unless these are extremely feeble), or if Λ\Lambda is low enough, so that inflaton fragmentation brings the universe rapidly into RD. Whenever RD is achieved, either due to reheating or to inflaton fragmentation, we characterize the energy and time scales of the problem, as a function of Λ\Lambda and ξ\xi.

Keywords

Cite

@article{arxiv.2406.02689,
  title  = {Geometric reheating of the Universe},
  author = {Daniel G. Figueroa and Nicolas Loayza},
  journal= {arXiv preprint arXiv:2406.02689},
  year   = {2024}
}

Comments

39 pages, 18 figures