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Neutrino-Mass-Driven Instabilities as the Earliest Flavor Conversion in Supernovae
Damiano F G Fiorillo1, Hans-Thomas Janka2, Georg G Raffelt3
1Deutsches Elektronen-Synchrotron DESY, Platanenallee 6, 15738 Zeuthen, Germany.
None:
Collective neutrino flavor conversions in core-collapse supernovae begin with instabilities, initially triggered when the dominant ν_{e} outflow concurs with a small antineutrino flux of opposite lepton number, with ν[over ¯]_{e} dominating over ν[over ¯]_{μ}. When these "flipped" neutrinos emerge in the energy-integrated angular distribution (angular crossing), they initiate a fast instability. However, before such conditions arise, spectral crossings typically appear within 20 ms of collapse, i.e., local spectral excesses of ν[over ¯]_{e} over ν[over ¯]_{μ} along some direction. Therefore, postprocessing supernova simulations cannot consistently capture later fast instabilities because the early slow ones have already altered the conditions.
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