Influence of light nuclei on neutrino-driven supernova outflows
arXiv:0805.3752 · doi:10.1103/PhysRevC.78.015806
Abstract
We study the composition of the outer layers of a protoneutron star and show that light nuclei are present in substantial amounts. The composition is dominated by nucleons, deuterons, tritons and alpha particles; 3He is present in smaller amounts. This composition can be studied in laboratory experiments with new neutron-rich radioactive beams that can reproduce similar densities and temperatures. After including the corresponding neutrino interactions, we demonstrate that light nuclei have a small impact on the average energy of the emitted electron neutrinos, but are significant for the average energy of antineutrinos. During the early post-explosion phase, the average energy of electron antineutrinos is slightly increased, while at later times during the protoneutron star cooling it is reduced by about 1 MeV. The consequences of these changes for nucleosynthesis in neutrino-driven supernova outflows are discussed.
10 pages, 4 figures, submitted to PRC
References in corpus (6)
- The r-process of stellar nucleosynthesis: Astrophysics and nuclear physics achievements and mysteries
- Appearance of Light Clusters in Post-bounce Evolution of Core-Collapse Supernovae
- Flavor Evolution of the Neutronization Neutrino Burst from an O-Ne-Mg Core-Collapse Supernova
- Multi-Dimensional Explorations in Supernova Theory
- Neutrino Breakup of A=3 Nuclei in Supernovae
- Low-Energy Inelastic Neutrino Reactions on 4He