Now showing 1 - 2 of 2
  • Publication
    Radiative type-I seesaw neutrino masses
    (2019-12-09) ; ;
    Cepedello, Ricardo
    ;
    Hirsch, Martin
    ;
    We discuss a radiative type-I seesaw. In these models, the radiative generation of Dirac neutrino masses allows to explain the smallness of the observed neutrino mass scale for rather light right-handed neutrino masses in a type-I seesaw. We first present the general idea in a model-independent way. This allows us to estimate the typical scale of right-handed neutrino mass as a function of the number of loops. We then present two example models, at the one- and two-loop level, which we use to discuss neutrino masses and lepton-flavor-violating constraints in more detail. For the two-loop example, right-handed neutrino masses must lie below 100 GeV, thus making this class of models testable in heavy neutral lepton searches.
  • Publication
    (g-2) anomalies and neutrino mass
    (2020-10-08) ;
    Cepedello, Ricardo
    ;
    Fonseca, Renato M.
    ;
    Hirsch, Martin
    Motivated by the experimentally observed deviations from standard model predictions, we calculate the anomalous magnetic moments 𝑎𝛼=(𝑔−2)𝛼 for 𝛼=𝑒, 𝜇 in a neutrino mass model originally proposed by Babu, Nandi, and Tavartkiladze (BNT). We discuss two variants of the model: the original model, and a minimally extended version with an additional hypercharge-zero triplet scalar. While the original BNT model can explain 𝑎𝜇, only the variant with the triplet scalar can explain both experimental anomalies. The heavy fermions of the model can be produced at the high-luminosity LHC, and in the part of parameter space where the model explains the experimental anomalies it predicts certain specific decay patterns for the exotic fermions.