English

Bare mass effects on the reheating process after inflation

High Energy Physics - Phenomenology 2024-02-28 v1 Cosmology and Nongalactic Astrophysics

Abstract

We consider the effects of a bare mass term for the inflaton, when the inflationary potential takes the form V(ϕ)=λϕkV(\phi)= \lambda \phi^k about its minimum with k4k \ge 4. We concentrate on k=4k=4, but discuss general cases as well. Further, we assume λϕend2mϕ2\lambda \phi_{\rm end}^2 \gg m_\phi^2, where ϕend\phi_{\rm end} is the inflaton field value when the inflationary expansion ends. We show that the presence of a mass term (which may be present due to radiative corrections or supersymmetry breaking) can significantly alter the reheating process, as the equation of state of the inflaton condensate changes from wϕ=13w_\phi=\frac{1}{3} to wϕ=0w_\phi=0 when λϕ2\lambda \phi^2 drops below mϕ2m_\phi^2. We show that for a mass mϕTRH/250m_\phi \gtrsim T_{\rm RH}/250, the mass term will dominate at reheating. We compute the effects on the reheating temperature for cases where reheating is due to inflaton decay (to fermions, scalars, or vectors) or to inflaton scattering (to scalars or vectors). For scattering to scalars and in the absence of a decay, we derive a strong upper limit to the inflaton bare mass mϕ<350 MeV(TRH/1010 GeV)3/5m_\phi < 350~{\rm MeV} (T_{\rm RH}/10^{10}~{\rm GeV})^{3/5}, as there is always a residual inflaton background which acts as cold dark matter. We also consider the effect of the bare mass term on the fragmentation of the inflaton condensate.

Keywords

Cite

@article{arxiv.2402.16958,
  title  = {Bare mass effects on the reheating process after inflation},
  author = {Simon Clery and Marcos A. G. Garcia and Yann Mambrini and Keith A. Olive},
  journal= {arXiv preprint arXiv:2402.16958},
  year   = {2024}
}

Comments

16 pages, 10 figures

R2 v1 2026-06-28T15:00:57.491Z