Thermal Leptogenesis in the BNT Model of Neutrino Mass
P. S. Bhupal Dev, Srubabati Goswami, Debashis Pachhar, Drona Vatsyayan
Abstract
We investigate neutrino mass and thermal leptogenesis in the Babu-Nandi-Tavartkiladze (BNT) model featuring a scalar quadruplet (Φ) and a pair of vector-like fermion triplets (Σ). In this framework, neutrino masses are generated via an effective dimension-7 operator LLHH(HH)/Λ3 at the tree level and via the dimension-5 operator LLHH/Λ at the one-loop level. It naturally accommodates sub-eV neutrino masses even if the new physics scale Λ is O( TeV), thus making the model a compelling target for experimental searches. We explore the viability of thermal leptogenesis in this model, which is distinct from the canonical seesaw-based leptogenesis due to the presence of vector-like fermions. We find that leptogenesis is viable for MΣ 107 GeV for a hierarchical spectrum of fermion triplets. However, in the quasi-degenerate regime, resonant enhancement of the CP asymmetry lowers this scale down to O( TeV), reconciling successful leptogenesis with the originally motivated TeV-scale phenomenology and testability of the model at colliders.
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