Axionic Extensions of the Supersymmetric Standard Model
arXiv:0806.4386 · doi:10.1142/S0217732309030837
Abstract
The Supersymmetric Standard Model is a benchmark theoretical framework for particle physics, yet it suffers from a number of deficiencies, chief among which is the strong CP problem. Solving this with an axion in the context of selected new particles, it is shown in three examples that other problems go away automatically as well, resulting in (-)^L and (-)^{3B} conservation, viable combination of two dark-matter candidates, successful baryogenesis, seesaw neutrino masses, and verifiable experimental consequences at the TeV energy scale.
12 pages, 1 figure
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Cited by in corpus (6)
- From the trees to the forest: a review of radiative neutrino mass models
- Seesaw Neutrino Mass and New U(1) Gauge Symmetry
- Inverse Seesaw Neutrino Mass from Lepton Triplets in the U(1)_Sigma Model
- Baryon asymmetry generation in the E6CHM
- Supersymmetric Axion-Neutrino Model with a Higgs Hybrid
- Syndetic Extension of Baryon and Lepton Numbers: Proton Decay and Long-Lived Dark Matter