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Neutrino mass mechanisms from a nonstandard Higgs Lagrangian and implications for flavor hierarchies

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arxiv 2312.16587 v3 pith:LTPS6WMG submitted 2023-12-27 hep-ph

classification hep-ph
keywords massscalehiggslagrangiancouplingsmechanismneutrinoyukawa
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We present an alternative framework to establish the neutrino mass scale from the Higgs mechanism in a minimalist approach, which does not introduce new scalar bosons or extend the symmetry group of the standard model (SM). A nonstandard form of the Higgs Lagrangian, constructed via the inverse problem of calculus of variations, is proposed. Only one dimensionful parameter in the TeV scale is incorporated into the SM Lagrangian. The multiplicative Lagrangian model of the Higgs field plays an essential role in explaining the vast mass difference between charged fermions and Dirac neutrinos, while the Yukawa couplings for these two groups of particles naturally fall within the same scale. On the other hand, if the neutrino mass term has both Dirac and Majorana components, the mass of the mostly right-handed neutrinos in the Type-I seesaw mechanism can range from the keV scale up to slightly below the grand unification scale without requiring extremely small Yukawa couplings outside the SM regime. Furthermore, we discuss the potential of this mechanism to explain the hierarchical structure in the Yukawa couplings between first- and third-generation particles.

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

  1. Deriving Tsallis entropy from non-extensive Hamiltonian within a statistical mechanics framework

    cond-mat.stat-mech 2024-11 reject novelty 4.0 of 10

    The authors attempt to show that a canonical ensemble built from a q-deformed Hamiltonian has thermodynamic entropy equal to Tsallis entropy.

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