Prospects for Neutrino Spin Coherence in Supernovae
James Y. Tian, Amol V. Patwardhan, George M. Fuller

TL;DR
This study investigates the potential for neutrino spin coherence effects during supernovae, revealing that significant spin transformations require unrealistic neutrino masses but can alter flavor evolution under certain conditions.
Contribution
First simulations to incorporate geometric dilution and combined flavor-spin evolution in supernova neutrino models, highlighting conditions for spin transformation.
Findings
Significant spin transformations need large neutrino luminosity and specific electron fraction profiles.
Spin transformations occur regardless of flavor structure, including two- or three-flavor models.
Inclusion of spin degrees of freedom can qualitatively change neutrino flavor evolution.
Abstract
We present neutrino bulb model simulations of Majorana neutrino coherent spin transformation (i.e., neutrino-antineutrino transformation), coupled to neutrino flavor evolution, for conditions corresponding to the neutronization burst epoch of an Oxygen-Neon-Magnesium (O-Ne-Mg) core collapse supernova. Significant neutrino spin transformation in, for example, the neutronization burst, could alter the fluences of neutrinos and antineutrinos in a way which is potentially detectable for a Galactic core collapse supernova. Our calculations for the first time incorporate geometric dilution in the spin evolution of the neutrinos and combine two-flavor and three-flavor evolution with spin mixing physics. We find that significant spin transformations can occur, but only with a large neutrino luminosity and an electron fraction () profile which facilitates adiabatic conditions for the…
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