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Two-Loop Z₄ Dirac Neutrino Masses and Mixing, with Self-Interacting Dark Matter

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arxiv 1907.04665 v1 pith:L4WBJIKX submitted 2019-07-08 hep-ph

Two-Loop Z₄ Dirac Neutrino Masses and Mixing, with Self-Interacting Dark Matter

classification hep-ph
keywords diracneutrinochoosingmassesmixingdark-matterdeltaneutrinos
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Choosing how gauge $U(1)_\chi$ breaks in the context of $SO(10) \to SU(5) \times U(1)_\chi$, $Z_4$ lepton number may be obtained which maintains neutrinos as Dirac fermions. Choosing $\Delta(27)$ as the family symmetry of leptons, tree-level Dirac neutrino masses may be forbidden. Choosing a specific set of self-interacting dark-matter particles, Dirac neutrino masses and mixing may then be generated in two loops. This framework allows the realization of cobimaximal neutrino mixing, i.e. $\theta_{13} \neq 0$, $\theta_{23} = \pi/4$, $\delta_{CP} = \pm \pi/2$, as well as the desirable feature that the light scalar mediator of dark-matter interactions decays only to neutrinos, thereby not disrupting the cosmic microwave background (CMB).

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    A one-loop Dirac neutrino mass model stabilized by a non-invertible fusion rule from Z3 x Z3' accommodates oscillation data and provides a viable bosonic dark matter candidate.