Charged current neutrino interactions in core-collapse supernovae in a virial expansion
Abstract
Core-collapse supernovae may depend sensitively on charged current neutrino interactions in warm, low density neutron rich matter. A proton in neutron rich matter is more tightly bound than is a neutron. This energy shift \Delta U increases the electron energy in \nu_e + n --> p + e, increasing the available phase space and absorption cross section. Likewise \Delta U decreases the positron energy in \bar \nu_e + p --> n + e^+, decreasing the phase space and cross section. We have calculated \Delta U using a model independent virial expansion and we find \Delta U is much larger, at low densities, than the predictions of many mean field models. Therefore \Delta U could have a significant impact on charged current neutrino interactions in supernovae. Preliminary simulations of the accretion phase of core-collapse supernovae find that \Delta U increases \bar \nu_e energies and decreases the \nu_e luminosity.
Keywords
Cite
@article{arxiv.1209.3173,
title = {Charged current neutrino interactions in core-collapse supernovae in a virial expansion},
author = {C. J. Horowitz and G. Shen and Evan O'Connor and Christian Ott},
journal= {arXiv preprint arXiv:1209.3173},
year = {2012}
}
Comments
8 pages, 4 figures, minor corrections, Phys. Rev. C in press