English

Freeze-in Dark Matter via Light Dirac Neutrino Portal

High Energy Physics - Phenomenology 2023-01-20 v2 Cosmology and Nongalactic Astrophysics

Abstract

We propose a scenario where dark matter (DM) can be generated non-thermally due to the presence of a light Dirac neutrino portal between the standard model (SM) and dark sector particles. The SM is minimally extended by three right handed neutrinos (νR\nu_R), a Dirac fermion DM candidate (ψ\psi) and a complex scalar (ϕ\phi), transforming non-trivially under an unbroken Z4\mathbb{Z}_4 symmetry while being singlets under the SM gauge group. While DM and νR\nu_R couplings are considered to be tiny in order to be in the non-thermal or freeze-in regime, ϕ\phi can be produced either thermally or non-thermally depending upon the strength of its Higgs portal coupling. We consider both these possibilities and find out the resulting DM abundance via freeze-in mechanism to constrain the model parameters in the light of Planck 2018 data. Since the interactions producing DM also produces relativistic νR\nu_R, we check the enhanced contribution to the effective relativistic degrees of freedom ΔNeff\Delta {\rm N}_{\rm eff} in view of existing bounds as well as future sensitivities. We also check the stringent constraints on free-streaming length of such freeze-in DM from structure formation requirements. Such constraints can rule out DM mass all the way up to O(100keV)\mathcal{O}(100 \, {\rm keV}) keeping the ΔNeffO(103)\Delta {\rm N}_{\rm eff} \leq \mathcal{O}(10^{-3}), out of reach from near future experiments. Possible extensions of this minimal model can lead to observable ΔNeff\Delta {\rm N}_{\rm eff} which can be probed at next generation experiments.

Keywords

Cite

@article{arxiv.2205.01144,
  title  = {Freeze-in Dark Matter via Light Dirac Neutrino Portal},
  author = {Anirban Biswas and Debasish Borah and Nayan Das and Dibyendu Nanda},
  journal= {arXiv preprint arXiv:2205.01144},
  year   = {2023}
}

Comments

48 pages, 10 captioned figures, matches version accepted for publication in Phys. Rev. D