English

Enhanced symmetry energy bears universality of the r-process

High Energy Astrophysical Phenomena 2021-10-05 v1 Nuclear Experiment Nuclear Theory

Abstract

The abundance of about half of the stable nuclei heavier than iron via the rapid neutron capture process or rr-process is intimately related to the competition between neutron capture and β\beta-decay rates, which ultimately depends on the binding energy of neutron-rich nuclei. The well-known Bethe-Weizs\"acker semi-empirical mass formula\cite{weiz,bethe} describes the binding energy of ground states -- i.e. nuclei with temperatures of T0T\approx0 MeV -- with the symmetry energy parameter converging between 232723-27 MeV for heavy nuclei. Here we find an unexpected enhancement of the symmetry energy at higher temperatures, T0.71.0T\approx0.7-1.0 MeV, from the available data of giant dipole resonances built on excited states. Although these are likely the temperatures where seed elements are created -- during the cooling down of the ejecta following neutron-star mergers\cite{mergersnucleo} or collapsars\cite{collapsar} -- the fact that the symmetry energy remains constant between T0.71.0T\approx0.7-1.0 MeV, suggests a similar trend down to T0.5T\approx0.5 MeV, where neutron-capture may start occurring. Calculations using this relatively larger symmetry energy yield a reduction of the binding energy per nucleon for heavy neutron-rich nuclei and inhibits radiative neutron-capture rates. This results in a substantial close in of the neutron dripline -- where nuclei become unbound -- which elucidates the long sought universality of heavy-element abundances through the rr-process; as inferred from the similar abundances found in extremely metal-poor stars and the Sun.

Keywords

Cite

@article{arxiv.2110.00713,
  title  = {Enhanced symmetry energy bears universality of the r-process},
  author = {José Nicolás Orce and Balaram Dey and Cebo Ngwetsheni and Srijit Bhattacharya and Deepak Pandit and Brenden Lesch and Andile Zulu},
  journal= {arXiv preprint arXiv:2110.00713},
  year   = {2021}
}

Comments

7 pages, 10 figures