Scalaron-driven Dark Matter during Warm Inflation via UV Freeze--in
F. Millo
hep-ph, astro-ph.HE, hep-th
Submitted: 2026-08-01
Journal ref: Eur. Phys. J. C 86, 910 (2026)
DOI: 10.1140/epjc/s10052-026-16169-y
License: http://creativecommons.org/licenses/by/4.0/
The gist: We investigate the production of Dark Matter (DM) within the warm Higgs--Starobinsky (HS) inflation.
Terminology
Abstract
We investigate the production of Dark Matter (DM) within the warm Higgs--Starobinsky (HS) inflation. By adopting the ultraviolet (UV) freeze--in mechanism -- where the DM number density is initially negligible but is populated over time through non-renormalizable interactions of defined mass dimensions -- we find that the DM production within the HS potential has a characteristic timing. For both DM masses, m chi=1 MeV and m chi=100 GeV, the yield of DM occurs close to the termination of inflation and its transition to the radiation dominated (RD) era. The present--day DM relic abundance is generated for both DM masses with non-renormalizable operators of mass dimension D=8,9 within strong dissipation regimes. The obtained results suggest that the form of the HS potential and the associated scalaron dynamics favor UV freeze--in DM production as the scalaron approaches the minimum of the potential, where energy transfer to the thermal bath becomes particularly efficient. This distinctive transition behavior differentiates the HS model from other inflationary models and advances our understanding of DM production.
Sources
- The Dawn of FIMP Dark Matter: A Review of Models and Constraints
- Identifying Universality in Warm Inflation
- Warm Inflation in $f(Q)$ gravity
- Complete EFT Operator Bases for Dark Matter and Weakly-Interacting Light Particle
- Recent developments in warm inflation
- Observational Constraints on Warm Natural Inflation
- Warm inflation with a heavy QCD axion
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