Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8184964 | Nuclear Physics B | 2018 | 20 Pages |
Abstract
We consider a version of the low-scale type I seesaw mechanism for generating small neutrino masses, as an alternative to the standard seesaw scenario. It involves two right-handed (RH) neutrinos ν1R and ν2R having a Majorana mass term with mass M, which conserves the lepton charge L. The RH neutrino ν2R has lepton-charge conserving Yukawa couplings gâ2 to the lepton and Higgs doublet fields, while small lepton-charge breaking effects are assumed to induce tiny lepton-charge violating Yukawa couplings gâ1 for ν1R, l=e,μ,Ï. In this approach the smallness of neutrino masses is related to the smallness of the Yukawa coupling of ν1R and not to the large value of M: the RH neutrinos can have masses in the few GeV to a few TeV range. The Yukawa couplings |gâ2| can be much larger than |gâ1|, of the order |gâ2|â¼10â4-10â2, leading to interesting low-energy phenomenology. We consider a specific realisation of this scenario within the Froggatt-Nielsen approach to fermion masses. In this model the Dirac CP violation phase δ is predicted to have approximately one of the values δâÏ/4,3Ï/4, or 5Ï/4,7Ï/4, or to lie in a narrow interval around one of these values. The low-energy phenomenology of the considered low-scale seesaw scenario of neutrino mass generation is also briefly discussed.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
J.T. Penedo, S.T. Petcov, Tsutomu T. Yanagida,