Next to new minimal standard model
arXiv:1309.1231 · doi:10.1016/j.physletb.2014.05.016
Abstract
We suggest a minimal extension of the standard model, which can explain current experimental data of the dark matter, small neutrino masses and baryon asymmetry of the universe, inflation, and dark energy, and achieve gauge coupling unification. The gauge coupling unification can explain the charge quantization, and be realized by introducing six new fields. We investigate the vacuum stability, coupling perturbativity, and correct dark matter abundance in this model by use of current experimental data.
17 pages, 8 figures
References in corpus (11)
- Observation of a new particle in the search for the Standard Model Higgs boson with the ATLAS detector at the LHC
- micrOMEGAs3.1 : a program for calculating dark matter observables
- Update on scalar singlet dark matter
- Right-Handed Neutrinos at LHC and the Mechanism of Neutrino Mass Generation
- Low Energy Signatures of the TeV Scale See-Saw Mechanism
- Planck constraints on single-field inflation
- Implications of LHC data on 125GeV Higgs-like boson for the Standard Model and its various extensions
- Coleman-Weinberg Potential In Good Agreement With WMAP
- Combination of CDF and DO results on the mass of the top quark using up to 8.7 fb^{-1} at the Tevatron
- Small steps towards Grand Unification and the electron/positron excesses in cosmic-ray experiments
- NNMSM Type-II and III
Cited by in corpus (4)
- Higgs inflation with singlet scalar dark matter and right-handed neutrino in light of BICEP2
- Gauge coupling unification in a classically scale invariant model
- Hierarchy problem, gauge coupling unification at the Planck scale, and vacuum stability
- Coupling Unification and Dark Matter in a Standard Model Extension with Adjoint Majorana Fermions