Dark matter stability from Dirac neutrinos in scotogenic 3-3-1-1 theory
arXiv:2005.03600 · doi:10.1103/PhysRevD.102.015022
Abstract
We propose the simplest TeV-scale scotogenic extension of the original 3-3-1 theory, where dark matter stability is linked to the Dirac nature of neutrinos, which results from an unbroken gauge symmetry. The new gauge bosons get masses through the interplay of spontaneous symmetry breaking à la Higgs and the Stueckelberg mechanism.
15 pages, 1 table, 2 figures. v2: Section on dark matter added - matches published version
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Cited by in corpus (10)
- Reloading the Axion in a 3-3-1 setup
- Cutting the Scotogenic loop: Adding flavor to Dark Matter
- Scale-invariant 3-3-1-1 model with symmetry
- Scotogenic model from an extended electroweak symmetry
- Axion framework with color-mediated Dirac neutrino masses
- Revisiting the scotogenic model with scalar dark matter
- A Scotogenic Model as a Prototype for Leptogenesis with One Single Gauge Singlet
- Dark matter in the scale-invariant 3-3-1-1 model
- Theory and phenomenology of Dirac neutrinos
- Implications of a dark grand unification