SU(5) unification of two triplet seesaw and leptogenesis with dark matter and vacuum stability
arXiv:2102.01605 · doi:10.1016/j.nuclphysb.2021.115484
Abstract
We investigate unification prospects of two heavy scalar triplet extension of the standard model where, in the absence of any right-handed neutrino (RHN), type-II seesaw accounts for current oscillation data with hierarchical neutrino masses consistent with cosmological bounds and the lighter triplet decay explains baryon asymmetry of the Universe via leptogenesis. We note that the absence of RHNs in the fundamental fermion representations of SU(5) delineates its outstanding position compared to SO(10) (or ). In addition, SU(5) needs smaller scalar representations compared to much larger representations SO(10) (or ). We show how precision gauge coupling unification is achieved through SU(5) with the predictions of different sets of two heavy triplet masses which, besides being compatible with type-II seesaw, are also consistent with unflavoured or flavoured leptogenesis. In addition to an intermediate mass colour octet fermion, completion of precision gauge coupling unification is found to require essentially the presence of the well known weak triplet fermion in its mass range GeV out of which the dominant dark matter (DM) resonance mass TeV is known to account for the observed cosmological relic density. The deficiency in relic density for lighter solutions is compensated by an additional scalar singlet DM. A GUT ansatz is noted to ensure vacuum stability of the SM scalar potential for all types of unification solutions realised in this work. We discuss proton lifetime estimations for compatible with the present Hyper-Kamiokande bound as a function of an unknown mixing parameter in the model.
36 pages, 12 figures, related areas hep-ex, Pub version: NPB (2021) 115484
References in corpus (39)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Big-Bang Nucleosynthesis
- Observation of an anomalous positron abundance in the cosmic radiation
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Data Processing, Sky Maps, and Basic Results
- Results from a search for dark matter in the complete LUX exposure
- Leptogenesis
- Gauge Singlet Scalars as Cold Dark Matter
- Dark Matter Results From 54-Ton-Day Exposure of PandaX-II Experiment
- Measurement of the Cosmic Ray e+ plus e- spectrum from 20 GeV to 1 TeV with the Fermi Large Area Telescope
- Cosmology and Astrophysics of Minimal Dark Matter
- Neutrino oscillations refitted
- Non-perturbative Effect on Thermal Relic Abundance of Dark Matter
- Distinguishing seesaw models at LHC with multi-lepton signals
- Minimal Dark Matter predictions for galactic positrons, anti-protons, photons
- Search for Proton Decay via and in 0.31 megatonyears exposure of the Super-Kamiokande Water Cherenkov Detector
- Type-III see-saw at LHC
- Probing seesaw at LHC
- Fermion Masses in SO(10) Models
- Fermion Triplet Dark Matter and Radiative Neutrino Mass
- Renormalizable Adjoint SU(5)
- Emanations of Dark Matter: Muon Anomalous Magnetic Moment, Radiative Neutrino Mass, and Novel Leptogenesis at the TeV Scale
- Proton decay matrix elements with domain-wall fermions
- Upper Bound on the Mass of the Type III Seesaw Triplet in an SU(5) Model
- Minimal SO(10) splits supersymmetry
- Proton lifetime bounds from chirally symmetric lattice QCD
- Proton Stability, Dark Matter and Light Color Octet Scalars in Adjoint SU(5) Unification
- Information on the structure of the a1 from tau decay
- Multipartite Dark Matter
- Intermediate left-right gauge symmetry, unification of couplings and fermion masses in SUSY
- Modified Contour-Improved Perturbation Theory
- Low Intermediate Scales for Leptogenesis in Supersymmetric SO(10) Grand Unified Theories
- Testing triplet fermions at the electron-positron and electron-proton colliders using fat jet signatures
- Neutrino mass and low-scale leptogenesis in a testable SUSY SO(10) model
- Inverse see-saw, leptogenesis, observable proton decay and in SUSY SO(10) with heavy W_R
- Connecting Radiative Neutrino Mass, Neutron-Antineutron Oscillation, Proton Decay, and Leptogenesis through Dark Matter
- Flavor unification, dark matter, proton decay and other observable predictions with low-scale symmetry
- QCD Effects on Direct Detection of Wino Dark Matter
- Purely Triplet Seesaw and Leptogenesis within Cosmological Bound, Dark Matter and Vacuum Stability