Thermal Gravitons from Warm Inflation
arXiv:2507.08739 · doi:10.1103/rnvb-t4lx
Abstract
In warm inflation (WI), the persistent thermal bath that is sustained by dissipative interactions with the inflaton field produces a stochastic background of gravitational waves (GWs). In this paper we study the production and evolution of these GWs. Specifically, we investigate the emission of thermal gravitons (gravitons emitted by a thermal bath) from particle scattering in the bath and the evolution of the corresponding GWs. We find that the bulk of thermal graviton production in WI occurs during the transition to radiation domination after inflation. Further, the energy density of thermal gravitons is enhanced by roughly one to two orders of magnitude compared to that in a radiation-dominated scenario with the same reheating temperature. We also calculate the spectrum of the resulting stochastic GW background and find that it has a distinctive shape, consisting of a peak at high frequencies ~100 GHz and an almost flat spectrum extending to low frequencies. The peak arises from emission of sub-horizon modes that follow the temperature of the bath. The flat part of the spectrum corresponds to the modes that exit the horizon during WI and re-enter during radiation domination. We show that the detection prospects for the high-frequency peak of the GW spectrum, while improved slightly compared to the radiation-dominated case, still remain challenging. The thermal spectrum's low-frequency plateau is typically subdominant to the amplitude of the standard vacuum tensor modes from inflation, although WI models can exist where the thermal graviton plateau surpasses the vacuum contribution without exceeding current observational limits on the tensor-to-scalar ratio. Furthermore, we calculate the thermal graviton contribution from WI to dark radiation and show that WI models are generally expected to satisfy current observational bounds, including those from the cosmic microwave background.
13 pages, 4 figures, v2: minor changes, matches published version
References in corpus (23)
- Planck 2018 results. X. Constraints on inflation
- Freeze-In Production of FIMP Dark Matter
- BICEP / Keck XIII: Improved Constraints on Primordial Gravitational Waves using Planck, WMAP, and BICEP/Keck Observations through the 2018 Observing Season
- CMB-S4: Forecasting Constraints on Primordial Gravitational Waves
- Warm Little Inflaton
- UltraViolet Freeze-in
- Upper limits on the amplitude of ultra-high-frequency gravitational waves from graviton-photon mixing
- Gravitational Waves as a Big Bang Thermometer
- Gravitational wave background from Standard Model physics: Qualitative features
- Gravitational wave background from Standard Model physics: Complete leading order
- Potential of radio telescopes as high-frequency gravitational wave detectors
- Electromagnetic Antennas for the Resonant Detection of the Stochastic Gravitational Wave Background
- Towards a reliable effective field theory of inflation
- Gravitational wave background from vacuum and thermal fluctuations during axion-like inflation
- Testing BSM Physics with Gravitational Waves
- Upper Bound on Thermal Gravitational Wave Backgrounds from Hidden Sectors
- Gravitational wave search through electromagnetic telescopes
- Limits on High-Frequency Gravitational Waves in Planetary Magnetospheres
- Dark Matter production during Warm Inflation via Freeze-In
- Constraints on the scalar-field potential in warm inflation
- Constraining gravitational-wave backgrounds from conversions into photons in the Galactic magnetic field
- Dark Matter Freeze-In during Warm Inflation and the Seesaw Mechanism
- Purely gravitational dark matter production in warm inflation
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- High-frequency gravitational waves from first-order phase transitions
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- Classical equipartition dynamics between axions and non-Abelian gauge fields