Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5494413 | Nuclear Physics B | 2017 | 20 Pages |
Abstract
Gauged U(1)LμâLÏ model has been advocated for a long time in light of muon gâ2 anomaly, which is a more than 3Ï discrepancy between the experimental measurement and the standard model prediction. We augment this model with three right-handed neutrinos (Ne,Nμ,NÏ) and a vector-like singlet fermion (Ï) to explain simultaneously the non-zero neutrino masses and dark matter content of the Universe, while satisfying the anomalous muon gâ2 constraints. We find that the model suffers stringent constraints from the simultaneous explanation of neutrino trident production and muon gâ2 anomaly. In a large region of the parameter space, where contribution to muon gâ2 anomaly comes partially and yet not ruled out by neutrino trident production, the model can explain the positron excess, observed at PAMELA, Fermi-LAT and AMS-02 through dark matter annihilation, while satisfying the relic density and direct detection limits.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
Sudhanwa Patra, Soumya Rao, Nirakar Sahoo, Narendra Sahu,