The Minimal Massive Majoron Seesaw Model
Abstract
A convincing explanation of the smallness of neutrino masses is represented by the Type-I Seesaw mechanism, where the two measured neutrino mass differences can be generated by introducing at least two right-handed neutrinos. In an ultraviolet complete model, it is possible to dynamically generate the heavy Majorana scale through the spontaneous symmetry breaking of a global Abelian symmetry and the most economical realisation consists in coupling the two exotic neutral leptons to a singlet complex scalar field. The associated Goldstone boson is often dubbed as Majoron, which may achieve a non-vanishing mass by means of a small term that explicitly breaks the Abelian symmetry. In a generic model, the neutrino and Majoron mass generation mechanisms are completely uncorrelated. In this paper, instead, we reduce the landscape of possible models proposing a unique, minimal and predictive framework in which these two types of masses are strictly tied and arise from the same source. Bounds from various terrestrial and astrophysical experiments are discussed.
Cite
@article{arxiv.2312.13417,
title = {The Minimal Massive Majoron Seesaw Model},
author = {Arturo de Giorgi and Luca Merlo and Xavier Ponce Díaz and Stefano Rigolin},
journal= {arXiv preprint arXiv:2312.13417},
year = {2024}
}
Comments
38 pages, 7 figures, 3 appendices. V2: matches published version