Momentum distributions of cosmic relics : Improved analysis
Abstract
We solve coupled momentum-dependent Boltzmann equations for the phase space distribution of cosmic relic particles, without resorting to approximations of assuming kinetic equilibrium or neglecting backscattering or elastic interactions. Our method is amendable to precision numerical computations. To test it, we consider two benchmark models where the momentum dependence of dark matter distribution function is potentially important: a real singlet scalar extension near the Higgs resonance and a sterile neutrino dark matter model with a singlet scalar mediator. The singlet scalar example shows that the kinetic equilibrium may hold surprisingly well even near sharp resonances. However, the integrated method may underestimate the relic density by up to 40% in extreme cases. In the sterile neutrino dark matter model, we studied how the inclusion of previously ignored elastic interactions and processes with initial state sterile neutrinos could affect the nonthermal nature of their resulting distributions. Here the effects turned out to be negligible, proving the robustness of the earlier predictions.
Main Authors
Format
Articles
Research article
Published
2022
Series
Subjects
Publication in research information system
Publisher
American Physical Society (APS)
The permanent address of the publication
https://urn.fi/URN:NBN:fi:jyu-202208154074Use this for linking
Review status
Peer reviewed
ISSN
2470-0010
DOI
https://doi.org/10.1103/PhysRevD.105.123005
Language
English
Published in
Physical Review D
Citation
- Ala-Mattinen, K., Heikinheimo, M., Kainulainen, K., & Tuominen, K. (2022). Momentum distributions of cosmic relics : Improved analysis. Physical Review D, 105(12), Article 123005. https://doi.org/10.1103/PhysRevD.105.123005
Funder(s)
Research Council of Finland
Funding program(s)
Academy Project, AoF
Akatemiahanke, SA
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Additional information about funding
This work was supported by the Academy of Finland Grants No. 310130, No. 342777, and No. 318319. K. A.-M. is funded by the doctoral program in Particle Physics and Universe Sciences in University of Helsinki.
Copyright© Authors, 2022