Sterile Neutrino Dark Matter in Left-Right Theories
Abstract
gauge symmetry requires three right-handed neutrinos (), one of which, , can be sufficiently stable to be dark matter. In the early universe, exchange with the Standard Model thermal bath keeps the right-handed neutrinos in thermal equilibrium at high temperatures. can make up all of dark matter if they freeze-out while relativistic and are mildly diluted by subsequent decays of a long-lived and heavier right-handed neutrino, . We systematically study this parameter space, constraining the symmetry breaking scale of and the mass of to a triangle in the plane, with GeV and . Much of this triangle can be probed by signals of warm dark matter, especially if leptogenesis from decay yields the observed baryon asymmetry. The minimal value of is increased to for doublet breaking of , and further to if leptogenesis occurs via decay, while the upper bound on is reduced to 100 keV. In addition, there is a component of hot dark matter resulting from the late decay of that can be probed by future cosmic microwave background observations. Interestingly, the range of allows both precision gauge coupling unification and the Higgs Parity understanding of the vanishing of the Standard Model Higgs quartic at scale . Finally, we study freeze-in production of dark matter via the interaction, which allows a much wider range of .
Keywords
Cite
@article{arxiv.2004.09511,
title = {Sterile Neutrino Dark Matter in Left-Right Theories},
author = {Jeff A. Dror and David Dunsky and Lawrence J. Hall and Keisuke Harigaya},
journal= {arXiv preprint arXiv:2004.09511},
year = {2020}
}
Comments
31 pages, 5 figures. Matches published version. Added references and clarifications