English

Asymmetric Self-interacting Dark Matter via Dirac Leptogenesis

High Energy Physics - Phenomenology 2022-11-30 v2 Cosmology and Nongalactic Astrophysics

Abstract

The nature of neutrinos, whether Dirac or Majorana, is hitherto not known. Assuming that the neutrinos are Dirac, which needs BLB-L to be an exact symmetry, we make an attempt to explain the observed proportionality between the relic densities of dark matter (DM) and baryonic matter in the present Universe i.e.,ΩDM5ΩB{\it i.e.,}\,\, \Omega_{\rm DM} \approx 5\, \Omega_{\rm B}. Assuming the existence of heavy SU(2)LSU(2)_L scalar doublet (X=(X0,X)T)(X= (X^0, X^-)^T) in the early Universe, an equal and opposite BLB-L asymmetry can be generated in left and right-handed sectors by the CP-violating out-of-equilibrium decay X0νLνRX^0 \to \nu_L \nu_R since BLB-L is an exact symmetry. We ensure that νLνR\nu_L-\nu_R equilibration does not occur until below the electroweak (EW) phase transition during which a part of the lepton asymmetry gets converted to dark matter asymmetry through a dimension eight operator, which conserves BLB-L symmetry and is in thermal equilibrium. The remaining BLB-L asymmetry then gets converted to a net B-asymmetry through EW-sphalerons which are active at a temperature above 100 GeV. To alleviate the small-scale anomalies of Λ\LambdaCDM, we assume the DM to be self-interacting via a light mediator, which not only depletes the symmetric component of the DM, but also paves a way to detect the DM at terrestrial laboratories through scalar portal mixing.

Keywords

Cite

@article{arxiv.2202.04704,
  title  = {Asymmetric Self-interacting Dark Matter via Dirac Leptogenesis},
  author = {Manoranjan Dutta and Nimmala Narendra and Narendra Sahu and Sujay Shil},
  journal= {arXiv preprint arXiv:2202.04704},
  year   = {2022}
}

Comments

17 pages, 10 captioned figures, Version accepted for publication in PRD

R2 v1 2026-06-24T09:29:03.490Z