English

Small Field Polynomial Inflation: Reheating, Radiative Stability and Lower Bound

High Energy Physics - Phenomenology 2021-09-22 v2 Cosmology and Nongalactic Astrophysics High Energy Physics - Theory

Abstract

We revisit the renormalizable polynomial inflection point model of inflation, focusing on the small field scenario which can be treated fully analytically. In particular, the running of the spectral index is predicted to be α=1.43×103+5.56×105(NCMB65)\alpha = -1.43 \times 10^{-3} +5.56 \times 10^{-5} \left(N_{\rm CMB}-65 \right), which might be tested in future. We also analyze reheating through perturbative inflaton decays to either fermionic or bosonic final states via a trilinear coupling. The lower bound on the reheating temperature from successful Big Bang nucleosynthesis gives lower bounds for these couplings; on the other hand radiative stability of the inflaton potential leads to upper bounds. In combination this leads to a lower bound on the location ϕ0\phi_0 of the near inflection point, ϕ0>3105\phi_0 > 3 \cdot 10^{-5} in Planckian units. The Hubble parameter during inflation can be as low as Hinf1H_{\rm inf} \sim 1 MeV, or as high as 1010\sim 10^{10} GeV. Similarly, the reheating temperature can lie between its lower bound of 4\sim 4 MeV and about 4108 (1011)4 \cdot 10^8 \ (10^{11}) GeV for fermionic (bosonic) inflaton decays. We finally speculate on the "prehistory" of the universe in this scenario, which might have included an epoch of eternal inflation.

Keywords

Cite

@article{arxiv.2104.03977,
  title  = {Small Field Polynomial Inflation: Reheating, Radiative Stability and Lower Bound},
  author = {Manuel Drees and Yong Xu},
  journal= {arXiv preprint arXiv:2104.03977},
  year   = {2021}
}

Comments

v2: typos corrected, references updated; expanded discussion on preheating and inflaton scattering; version accepted by JCAP

R2 v1 2026-06-24T00:58:42.412Z