Scattering versus Forbidden Decay in Dark Matter Freeze-in
arXiv:2211.16802 · doi:10.1103/PhysRevD.108.015014
Abstract
It is generically believed that the two-body scattering is suppressed by higher-order weak couplings with respect to the two-body decay. We show that this does not always hold when a heavy particle is produced by forbidden decay in a thermal plasma, where the scattering shares the same order of couplings with the decay. We find that there is a simple and close relation between the forbidden decay and the same-order scattering. To illustrate this point, we consider freeze-in production of heavy dark matter via a light scalar mediator. We point out that, when the Boltzmann (quantum) statistics is used, the forbidden decay can contribute to the dark matter relic density at 5-24 (10-) with a weak thermal coupling, while the contribution from the scattering channel can be several orders of magnitude larger than from the forbidden decay if the thermal coupling is much smaller. Such a relative effect between the scattering and the forbidden decay could also exist in other plasma-induced processes, such as the purely thermal generation of the right-handed neutrino dark matter, or of the lepton asymmetry in leptogenesis.
8 pages, 3 figures, version accepted for publication in PRD
References in corpus (17)
- The Dawn of FIMP Dark Matter: A Review of Models and Constraints
- Sterile neutrinos, dark matter, and the pulsar velocities in models with a Higgs singlet
- Stellar cooling bounds on new light particles: plasma mixing effects
- Dark-matter sterile neutrinos in models with a gauge singlet in the Higgs sector
- Thermal production of gravitinos
- On Effective Degrees of Freedom in the Early Universe
- Making dark matter out of light: freeze-in from plasma effects
- Thermal Dark Matter From A Highly Decoupled Sector
- Medium corrections to the CP-violating parameter in leptogenesis
- Freezing-in a hot bath: resonances, medium effects and phase transitions
- Freeze-in produced dark matter in the ultra-relativistic regime
- Neutrino Magnetic Moments Meet Precision Measurements
- Dark matter produced from right-handed neutrinos
- Momentum distributions of cosmic relics: Improved analysis
- Freeze-in Dark Matter Through Forbidden Channel in
- Dark matter freeze-in via a light fermion mediator: forbidden decay and scattering
- Baryogenesis from Hierarchical Dirac Neutrinos