Dark Matter as an Inflationary Relic in Warm Inflation
Swagat S. Mishra, Umang Kumar, Suratna Das, Varun Sahni
astro-ph.CO, gr-qc, hep-ph, hep-th
Submitted: 2026-06-20
Comments: Letter, 6 pages + end matter, 3 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: Warm inflation is usually expected to completely deplete the inflaton condensate by dissipating its energy into radiation.
Terminology
Abstract
Warm inflation is usually expected to completely deplete the inflaton condensate by dissipating its energy into radiation. We show that this expectation fails in a simple and observationally viable regime. In a strongly dissipative warm inflationary scenario, the dissipative ratio, Q= /(3H), can fall rapidly after the end of inflation as the system approaches radiation domination, thereby suppressing further energy transfer to the thermal bath. This leads to a residual inflaton condensate, which subsequently evolves as an effectively non-dissipative scalar field. For potentials with a stable quadratic minimum, this remnant inflaton manifests as a cold dark matter component. We establish this mechanism for the minimal renormalizable potential, with a dissipative coefficient proportional to T cubed. In this case, current cosmological data allow strong dissipation while leaving the inflaton mass weakly constrained by inflationary observables. The observed dark matter abundance then fixes its mass to be m about 0.02, MeV, while larger masses overclose the Universe. The transition to matter-like scaling occurs well before BBN, avoiding a long-lived inflaton dark radiation component. Relic inflaton dark matter therefore turns the post-inflationary dynamics of warm inflation into a new late time constraint on its parameter space.
Sources
- Particle Physics and Inflationary Cosmology
- Coherent Phase Argument for Inflation
- TASI Lectures on Inflation
- Encyclopaedia Inflationaris
- TASI Lectures on Primordial Cosmology
- Cosmic Inflation: Background dynamics, Quantum fluctuations and Reheating
- Reheating after Inflation
- Universe Reheating after Inflation
- The Origin of Matter in the Universe: Reheating after Inflation
- Towards the Theory of Reheating After Inflation
- Inflation Dynamics and Reheating
- Nonperturbative Dynamics Of Reheating After Inflation: A Review
- Lectures on Reheating after Inflation
- Warm Inflation
- Thermally Induced Density Perturbations in the Inflation Era
- Thermal Properties of an Inflationary Universe
- Strong Dissipative Behavior in Quantum Field Theory
- A First Principles Warm Inflation Model that Solves the Cosmological Horizon/Flatness Problems
- Scalar perturbation spectra from warm inflation
- Density fluctuations from warm inflation
Related papers
- Angular clustering and bias of photometric quasars in the Kilo-Degree Survey Data Release 4
- A Novel kinetic Sunyaev-Zel'dovich Estimator for Electron-Electron Correlations
- Magnetic fields at the dawn of structure formation I. The CARLA J1510+5958 proto-cluster
- Dark Energy Survey Year 6 Results: Weak Lensing and Galaxy Clustering Cosmological Analysis Framework
- Exploring the Impact of Systematic Bias in Type Ia Supernova Cosmology Across Diverse Dark Energy Parametrizations
- Non-Gaussian Galaxy Stochasticity and the Noise-Field Formulation