Asymmetric Self-interacting Dark Matter via Dirac Leptogenesis
Abstract
The nature of neutrinos, whether Dirac or Majorana, is hitherto not known. Assuming that the neutrinos are Dirac, which needs 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 . Assuming the existence of heavy scalar doublet in the early Universe, an equal and opposite asymmetry can be generated in left and right-handed sectors by the CP-violating out-of-equilibrium decay since is an exact symmetry. We ensure that 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 symmetry and is in thermal equilibrium. The remaining 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 CDM, 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