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arXiv · hep-ph/0211378

Predictive Framework with a Pair of Degenerate Neutrinos at a high scale

Abstract

Radiative generation of the solar scale $Δ_{\odot}$ is discussed in the presence of leptonic CP violation. We assume that both the solar scale and $U_{e3}$ are zero at a high scale and the weak radiative corrections generate them. It is shown that all leptonic mass matrices satisfying these requirements lead to a unique prediction $Δ_{\odot} \cos 2θ_{\odot}\approx 4 δ_τ\sin^2 θ_A |m_{ee}|^2$ for the solar scale in terms of the radiative correction parameter $δ_τ$, the physical solar (atmospheric) mixing angles $θ_{odot} (θ_A)$ and the Majorana neutrino mass $m_{ee}$ probed in neutrinoless double beta decay. This relation is independent of the mixing matrix and CP-violating phases at the high scale. The presence of CP-violating phases leads to dilution in the solar mixing angle defined at the high scale. Because of this, bi-maximal mixing pattern at the high energy leads to large but non-maximal solar mixing in the low-energy theory. An illustrative model with this feature is discussed.

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Anjan S. Joshipura, Saurabh D. Rindani, N. Nimai Singh. 2002-11-25. Predictive Framework with a Pair of Degenerate Neutrinos at a high scale. https://doi.org/10.1016/s0550-3213(03)00236-0

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