English

Matter Power Spectrum of Light Freeze-in Dark Matter: With or without Self-Interaction

High Energy Physics - Phenomenology 2020-01-27 v3

Abstract

We study the free-streaming effect in a light freeze-in dark matter model. Naturally in the dark sector one can find dark matter related coupling, and such coupling may induce dark matter self-scattering. In case that such scattering is subdominant, the dark matter partition function is not thermal but determined by the freeze-in process, yet its high momentum side is generally also Boltzmann suppressed. We show that the matter power spectrum is very similar to a warm dark matter one in shape. When matched to the current WDM bound, a 2424~keV freeze-in dark matter is ruled out at 2σ2\sigma confidence level. In case that the dark matter self-scattering is strong and decouples at a very late time, by a new numerical calculation we show that the early stage Brownian motion indeed protects the power spectrum against free-streaming suppression. However, such an effect cannot be characterized by a free-streaming length alone; we find that the self-scattering decoupling time is another necessary parameter. The currently interested dark matter self-interaction cross section cm2/g\sim\text{cm}^2/\text{g} is just marginal for such protection to be effective.

Keywords

Cite

@article{arxiv.1907.02454,
  title  = {Matter Power Spectrum of Light Freeze-in Dark Matter: With or without Self-Interaction},
  author = {Ran Huo},
  journal= {arXiv preprint arXiv:1907.02454},
  year   = {2020}
}

Comments

5 pages, 4 figures. Version published on PLB