English

Modular $A_4$ invariance and neutrino mixing

High Energy Physics - Phenomenology 2018-12-26 v2

Abstract

We study the phenomenological implications of the modular symmetry Γ(3)A4\Gamma(3) \simeq A_4 of lepton flavors facing recent experimental data of neutrino oscillations. The mass matrices of neutrinos and charged leptons are essentially given by fixing the expectation value of modulus τ\tau, which is the only source of modular invariance breaking. We introduce no flavons in contrast with the conventional flavor models with A4A_4 symmetry. We classify our neutrino models along with the type I seesaw model, the Weinberg operator model and the Dirac neutrino model. In the normal hierarchy of neutrino masses, the seesaw model is available by taking account of recent experimental data of neutrino oscillations and the cosmological bound of sum of neutrino masses. The predicted sin2θ23\sin^2\theta_{23} is restricted to be larger than 0.540.54 and δCP=±(50\mbox180)\delta_{CP}=\pm (50^{\circ}\mbox{--}180^{\circ}). Since the correlation of sin2θ23\sin^2\theta_{23} and δCP\delta_{CP} is sharp, the prediction is testable in the future. It is remarkable that the effective mass meem_{ee} of the neutrinoless double beta decay is around 2222\,meV while the sum of neutrino masses is predicted to be 145145\,meV. On the other hand, for the inverted hierarchy of neutrino masses, only the Dirac neutrino model is consistent with the experimental data.

Keywords

Cite

@article{arxiv.1808.03012,
  title  = {Modular $A_4$ invariance and neutrino mixing},
  author = {Tatsuo Kobayashi and Naoya Omoto and Yusuke Shimizu and Kenta Takagi and Morimitsu Tanimoto and Takuya H. Tatsuishi},
  journal= {arXiv preprint arXiv:1808.03012},
  year   = {2018}
}

Comments

17 pages, 6 figures, 5 tables, major modifications