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arXiv · hep-ph/0003189

Maximal $ν_e$ oscillations, Borexino and smoking guns

Abstract

We examine the maximal $ν_e --> ν_s$ and $ν_e --> ν_μ,τ$ oscillation solutions to the solar neutrino problem. These solutions lead to roughly a 50% solar flux reduction for the large parameter range $3\times 10^{-10} < δm^2/eV^2 < 10^{-3}$. It is known that the earth regeneration effect may cause a potentially large night-day asymmetry even for maximal neutrino oscillations. We investigate the night-day asymmetry predictions for the forthcoming Borexino measurement of the ^7Be neutrinos for both maximal $ν_e --> ν_s$ and $ν_e --> ν_μ,τ$ oscillations. If $y \times 10^{-8} < δm^2/eV^2 < 4y \times 10^{-5}$ (with y = 0.5 for $ν_e --> ν_s$ case and y = 1 for $ν_e --> ν_μ,τ$ case) then the maximal neutrino oscillations will lead to observable night-day asymmetries in Borexino and/or superKamiokande. With Kamland covering the high mass range, $10^{-5} < δm^2/eV^2 < 10^{-3}$ and Borexino/superK covering the low mass range, $3\times 10^{-10} < δm^2/eV^2 < 5\times 10^{-9}$ ("just so" region), essentially all of the $δm^2$ parameter space will soon be scrutinized.

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BibTeXRIS

R. Foot. 2000-04-27. Maximal $ν_e$ oscillations, Borexino and smoking guns. https://doi.org/10.1016/s0370-2693(00)00553-0

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