The r-Process in Supernovae: Impact of New Microscopic Mass Formulas
Abstract
The astrophysical origin of -process nuclei remains a long-standing mystery. Although some astrophysical scenarios show some promise, many uncertainties involved in both the astrophysical conditions and in the nuclear properties far from the -stability have inhibited us from understanding the nature of the -process. The purpose of the present paper is to examine the effects of the newly-derived microscopic Hartree-Fock-Bogoliubov (HFB) mass formulas on the -process nucleosynthesis and analyse to what extent a solar-like -abundance distribution can be obtained. The -process calculations with the HFB-2 mass formula are performed, adopting the parametrized model of the prompt explosion from a collapsing O-Ne-Mg core for the physical conditions and compared with the results obtained with the HFB-7 and droplet-type mass formulas. Due to its weak shell effect at the neutron magic numbers in the neutron-rich region, the microscopic mass formulas (HFB-2 and HFB-7) give rise to a spread of the abundance distribution in the vicinity of the -process peaks ( and 195). While this effect resolves the large underproduction at and 140 obtained with droplet-type mass formulas, large deviations compared to the solar pattern are found near the third -process peak. It is shown that a solar-like -process pattern can be obtained if the dynamical timescales of the outgoing mass trajectories are increased by a factor of about 2-3, or if the -decay rates are systematically increased by the same factor.
Cite
@article{arxiv.astro-ph/0401412,
title = {The r-Process in Supernovae: Impact of New Microscopic Mass Formulas},
author = {Shinya Wanajo and Stephane Goriely and Mathieu Samyn and Naoki Itoh},
journal= {arXiv preprint arXiv:astro-ph/0401412},
year = {2009}
}
Comments
22 pages, 12 figures, accepted for publication in ApJ, some color figures converted to B&W due to size constraints