Rare $B$ and $K$ decays in a scotogenic model
Abstract
A scotogenic model can radiatively generate the observed neutrino mass, provide a dark matter candidate, and lead to rare lepton flavor-violating processes. We aim to extend the model to establish a potential connection to the quark flavor-related processes within the framework of scotogenesis, enhancing the unexpectedly large branching ratio (BR) of , observed by Belle II Collaboration. Meanwhile, the model can address tensions between some experimental measurements and standard model (SM) predictions in flavor physics, such as the muon excess and the higher BR of . We introduce in the model the following dark particles: a neutral singlet Dirac-type lepton (); two inert Higgs doublets (), with one of which carrying a lepton number; a charged singlet dark scalar , and a singlet vector-like up-type dark quark (). The first two entities are responsible for the radiative neutrino mass, and couples to right-handed quarks and leptons and can resolve the tensions existing in muon and . Furthermore, the BR of can be enhanced up to a factor of 2 compared to the SM prediction through the mediations of the dark and the charged scalars. In addition, we also study the impacts on the decays.
Cite
@article{arxiv.2403.02897,
title = {Rare $B$ and $K$ decays in a scotogenic model},
author = {Chuan-Hung Chen and Cheng-Wei Chiang},
journal= {arXiv preprint arXiv:2403.02897},
year = {2024}
}
Comments
34 pages, 6 figures, references added, text revised