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A Redetermination of the Neutrino Mass-Squared Difference in Tri-Maximal Mixing with Terrestrial Matter Effects

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arxiv hep-ph/9904297 v1 pith:JVUCMPT5 submitted 1999-04-11 hep-ph

classification hep-ph
keywords mixingmaximaldifferenceeffectsexperimentsmass-squaredmatterneutrino
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abstract

We re-fit for the neutrino mass-squared difference $\Delta m^2$ in the threefold maximal (ie. tri-maximal) mixing scenario using recent CHOOZ and SUPER-K data, taking account of matter effects in the Earth. While matter effects have little influence on reactor experiments and proposed long-baseline accelerator experiments with $L \simlt 1000 km$, they are highly significant for atmospheric experiments, suppressing naturally $\nu_e$ mixing and enhancing $\nu_{\mu} - \nu_{\tau}$ mixing, so as to effectively remove the experimental distinction between threefold maximal and twofold maximal $\nu_{\mu}-\nu_{\tau}$ mixing. Threefold maximal mixing is fully consistent with the CHOOZ and SUPER-K data and the best-fit value for the neutrino mass-squared difference is $\Delta m^2 = (0.98 \pm^{0.30}_{0.23}) \times 10^{-3} eV^2$.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Phenomenological Study of Type II Seesaw with $\Delta(27)$ Symmetry

    hep-ph 2019-09 reject novelty 3.0 of 10

    A Δ(27) flavor-symmetric type-II seesaw model reproduces neutrino oscillation data only after an ad hoc diagonal perturbation is added, and its CP violation predictions reduce to parameter scans.

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