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Dark symmetry implication for right-handed neutrinos

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arxiv 2407.02324 v2 pith:GUCMLGGX submitted 2024-07-02 hep-ph

Dark symmetry implication for right-handed neutrinos

classification hep-ph
keywords darkneutrinoneutrinossymmetrychargefieldshiggsmass
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We argue that the long-standing issues of neutrino mass and dark matter can be manifestly solved in a dark gauge symmetry $U(1)_D$ that transforms nontrivially only for three right-handed neutrinos $\nu_{1,2,3R}$ -- the counterparts of known left-handed neutrinos. This theory assigns $\nu_{1,2,3R}$ dark charge to be $D=0$, $-1$, and $+1$, respectively, in order for anomaly cancelation. Additionally, it imposes an inert Higgs doublet $\eta$ and two Higgs singlets $\xi,\phi$ with dark charge $D=+1$, $-1$, and $+2$, respectively. That said, the dark symmetry is broken by $\phi$ (by two units) down to a dark parity $P_D=(-1)^D$, for which $\nu_{2,3R}$ and $\eta,\xi$ are odd, whereas all other fields are even due to $D=0$. The lightest of these odd fields is stabilized by $P_D$, responsible for dark matter. Neutrino masses are generated by a scotoseesaw scheme, in which the seesaw part is mediated by $\nu_{1R}$, while the scotogenic part is mediated by $\nu_{2,3R}$, for which the hierarchy of atmospheric and solar neutrino mass splittings is explained.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Generation-separated hypercharges and dark charges: origin of flavor, neutrino masses, and dark matter

    hep-ph 2026-07 conditional novelty 4.0

    Generation-separated U(1) hypercharges plus a dark U(1) can generate hierarchical charged-fermion masses, seesaw/scotoseesaw neutrinos, and Z2-stabilized TeV-scale dark matter from one breaking pattern.

  2. Constraints from the SM-like Higgs boson in a flavor-dependent $U(1)$ extension of the Standard Model

    hep-ph 2026-07 conditional novelty 3.5

    In this U(1)_X model, κ_γ stays within ATLAS/CMS 1σ while charged Higgses are pushed above roughly 650–700 GeV and λ_13+λ_14 obey simple lower bounds set by the H–heavy-Higgs mixings.