English

Phase broken $\mu-\tau$ symmetry and the neutrino mass hierarchy

High Energy Physics - Phenomenology 2021-07-14 v3

Abstract

Inspired by the neutrino oscillations data, we consider the exact μτ\mu-\tau symmetry, implemented at the level of the neutrino mass matrix, as a good initial framework around which to study and describe neutrino phenomenology. Working in the diagonal basis for the charged leptons, we deviate from μτ\mu-\tau symmetry by just modifying the phases of the neutrino mass matrix elements. This deviation is enough to allow for a non-vanishing neutrino mixing entry Ve3|V_{e3}| (i.e. θ13\theta_{13}) but it also gives a very stringent (and eventually falsifiable) prediction for the atmospheric neutrino mixing element Vμ3|V_{\mu3}| as a function of Ve3|V_{e3}|. The breaking by phases is characterized by a single phase and is shown to lead to interesting lower bounds on the allowed mass of the lightest neutrino depending on the ordering of neutrino masses (normal or inverted) and on the value of the Dirac CP{\cal CP} violating phase δCP\delta_{CP}. The allowed parameter space for the effective Majorana neutrino mass meem_{ee} is also shown to be non-trivially constrained.

Keywords

Cite

@article{arxiv.1905.00675,
  title  = {Phase broken $\mu-\tau$ symmetry and the neutrino mass hierarchy},
  author = {N. Chamoun and C. Hamzaoui and S. Lashin and S. Nasri and M. Toharia},
  journal= {arXiv preprint arXiv:1905.00675},
  year   = {2021}
}

Comments

27 pages and 5 figure. Version to appear in PRD