Light Dirac neutrino portal dark matter with observable ΔNeff
Abstract
We propose a Dirac neutrino portal dark matter scenario by minimally extending the particle content of the Standard Model (SM) with three right-handed neutrinos (νR), a Dirac fermion dark matter candidate (ψ) and a complex scalar (ϕ), all of which are singlets under the SM gauge group. An additional &Z;4 symmetry has been introduced for the stability of dark matter candidate ψ and also ensuring the Dirac nature of light neutrinos at the same time. Both the right handed neutrinos and the dark matter thermalise with the SM plasma due to a new Yukawa interaction involving νR, ψ and ϕ while the latter maintains thermal contact via the Higgs portal interaction. The decoupling of νR occurs when ϕ loses its kinetic equilibrium with the SM plasma and thereafter all three &Z;4 charged particles form an equilibrium among themselves with a temperature TνR. The dark matter candidate ψ finally freezes out within the dark sector and preserves its relic abundance. We have found that in the present scenario, some portion of low mass dark matter (Mψ ≲ 10 GeV) is already excluded by the Planck 2018 data for keeping νRs in the thermal bath below a temperature of 600 MeV and thereby producing an excess contribution to Neff. The next generation experiments like CMB-S4, SPT-3G etc. will have the required sensitivities to probe the entire model parameter space of this minimal scenario, especially the low mass range of ψ where direct detection experiments are still not capable enough for detection.
- Publication:
-
Journal of Cosmology and Astroparticle Physics
- Pub Date:
- October 2021
- DOI:
- 10.1088/1475-7516/2021/10/002
- arXiv:
- arXiv:2103.05648
- Bibcode:
- 2021JCAP...10..002B
- Keywords:
-
- dark matter theory;
- particle physics - cosmology connection;
- cosmology of theories beyond the SM;
- neutrino properties;
- High Energy Physics - Phenomenology;
- Astrophysics - Cosmology and Nongalactic Astrophysics
- E-Print:
- 39 pages, 7 figures, 1 table, a new discussion related to the decay of $\phi$ has been added in Appendix A, new figures are added, new references are added, conclusion remains unchanged, version accepted for publication in JCAP