Dirac Scoto Inverse-Seesaw from Flavor Symmetry
arXiv:2505.01407 · doi:10.1007/JHEP10(2025)088
Abstract
We present a Dirac scotogenic-like one loop radiative model where the stability of dark matter is intricately linked to the breaking of flavor symmetry. This breaking induces a dark symmetry, stabilizing the dark matter candidate. The breaking of leads to cutting the loop and facilitating a "scoto inverse-seesaw" mass mechanism responsible for neutrino mass generation. This elucidates the explicit explanation of two mass-squared differences, and observed in neutrino oscillations. Our model accounts for normal and inverted ordering of neutrino masses, revealing sharp correlations between and . It also shows strong compatibility with current data in the - plane. Moreover, stringent constraints on scalar masses narrow down the viable dark matter mass regions, accommodating singlet and doublet scalar dark matter as well as fermionic dark matter. Additionally, our model presents a viable avenue for addressing lepton flavor violating decays while remaining consistent with current experimental constraints.
35 pages, 16 figures, 2 tables, matches with the published version in JHEP
References in corpus (10)
- micrOMEGAs4.1: two dark matter candidates
- Observing the Dark Scalar Doublet and its Impact on the Standard-Model Higgs Boson at Colliders
- Significant Gamma Lines from Inert Higgs Dark Matter
- Natural Dark Matter from an Unnatural Higgs Boson and New Colored Particles at the TeV Scale
- Pathways to Naturally Small Dirac Neutrino Masses
- Radiative Neutrino Mass, Dark Matter and Leptogenesis
- Discrete dark matter
- Common origin of and dark matter within the flavor symmetric scoto-seesaw framework
- Cutting the Scotogenic loop: Adding flavor to Dark Matter
- Dark symmetry implication for right-handed neutrinos