Leptogenesis and Low Reheating Temperatures
Marcos A. G. Garcia, Stephen E. Henrich, Wenqi Ke, Keith A. Olive
hep-ph, astro-ph.CO
Submitted: 2026-07-09
Comments: 39 pages, 11 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: We study leptogenesis during non-instantaneous reheating in the canonical type-I seesaw framework, with the dominant source of right-handed neutrino (RHN) production being non-thermal from inflaton
Terminology
Abstract
We study leptogenesis during non-instantaneous reheating in the canonical type-I seesaw framework, with the dominant source of right-handed neutrino (RHN) production being non-thermal from inflaton decays (phi to NN). While matter-like reheating (w phi=0) fails to be compatible with standard leptogenesis for very low reheating temperatures, the situation is strikingly different for generalized Starobinsky potentials approximated by V(phi) proportional to phi k with k at least4 about the minimum. In the latter cases, the observed baryon asymmetry can readily be obtained for arbitrarily low reheating temperatures above the BBN bound of about4 MeV. We study radiation-like reheating (w phi=1/3, k=4) in detail, showing that the evolving effective mass of the inflaton condensate leads to kinematic shutoff of the phi to NN channel, which qualitatively changes the leptogenesis dynamics. We include a detailed treatment of the effects of fragmentation of the inflaton condensate. The final baryon asymmetry depends primarily on only two parameters: the inflaton-RHN coupling, y phi NN, and the CP-violating parameter epsilon. Interestingly, the final asymmetry is largely insensitive to the RHN mass, the reheating temperature, and the RHN decay rate. While we focus on fermionic reheating, we show that the general features of these results also hold for bosonic reheating to scalars.
Sources
- Big Bang Nucleosynthesis: 2015
- Precision big bang nucleosynthesis with improved Helium-4 predictions
- Big-Bang Nucleosynthesis After Planck
- Big Bang Baryogenesis
- Recent Progress in Baryogenesis
- Baryogenesis from the weak scale to the grand unification scale
- Particle Physics Models of Inflation and the Cosmological Density Perturbation
- Encyclopaedia Inflationaris
- The Best Inflationary Models After Planck
- The Observational Status of Cosmic Inflation after Planck
- Inflation (2025)
- MeV-scale Reheating Temperature and Thermalization of Neutrino Background
- Bounds on very low reheating scenarios after Planck
- What is the lowest possible reheating temperature?
- MeV-scale reheating temperature and thermalization of oscillating neutrinos by radiative and hadronic decays of massive particles
- Freezing-in hadrophilic dark matter at low reheating temperatures
- Freeze-in at stronger coupling
- From WIMPs to FIMPs with Low Reheating Temperatures
- Higgs Portal Dark Matter Freeze-in at Stronger Coupling: Observational Benchmarks
- Minimal Dark Matter Freeze-in with Low Reheating Temperatures and Implications for Direct Detection
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