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Revisiting pseudo-Dirac neutrino scenario after recent solar neutrino data

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arxiv 2211.09105 v2 pith:GHIE65KW submitted 2022-11-16 hep-ph

classification hep-ph
keywords neutrinodatamasssolarfluxmajoranapseudo-diracsplitting
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

It is still unknown whether the mass terms for neutrinos are of Majorana type or of Dirac type. An interesting possibility, known as pseudo-Dirac scheme combines these two with a dominant Dirac mass term and a subdominant Majorana one. As a result, the mass eigenstates come in pairs with a maximal mixing and a small splitting determined by the Majorana mass. This will affect the neutrino oscillation pattern for long baselines. We revisit this scenario employing recent solar neutrino data, including the seasonal variation of the $^7$Be flux recently reported by BOREXINO. We constrain the splitting using these data and find that both the time integrated solar neutrino data and the seasonal variation independently point towards a new pseudo-Dirac solution with nonzero splitting for $\nu_2$ of $\Delta m_2^2\simeq 1.5\times 10^{-11}$ eV$^2$. We propose alternative methods to test this new solution. In particular, we point out the importance of measuring the solar neutrino flux at the intermediate energies $1.5~{\rm MeV}<E_\nu<3.5~{\rm MeV}$ (below the Super-Kamiokande detection threshold) as well as a more precise measurement of the $pep$ flux. The code is available on \href{https://github.com/SaeedAnsarifard/SolarNeutrinos-pseudoDirac.git}{Github}

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Cited by 2 Pith papers

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  1. Exploring New Propagation Scales With Galactic Neutrinos

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    hep-ph 2025-09 conditional novelty 6.0 of 10

    A two-stage mechanism where relic neutrinos convert to dark neutrinos in the early universe and later decay into photon states can explain the ARCADE 2 excess radio background while evading neutrino magnetic moment bounds.

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