Novel Techniques for Constraining Neutron-Capture Rates Relevant for r-Process Heavy-Element Nucleosynthesis
Abstract
The rapid-neutron capture process ( process) is identified as the producer of about 50\% of elements heavier than iron. This process requires an astrophysical environment with an extremely high neutron flux over a short amount of time ( seconds), creating very neutron-rich nuclei that are subsequently transformed to stable nuclei via decay. One key ingredient to large-scale -process reaction networks is radiative neutron-capture () rates, for which there exist virtually no data for extremely neutron-rich nuclei involved in the process. Due to the current status of nuclear-reaction theory and our poor understanding of basic nuclear properties such as level densities and average -decay strengths, theoretically estimated () rates may vary by orders of magnitude and represent a major source of uncertainty in any nuclear-reaction network calculation of -process abundances. In this review, we discuss new approaches to provide information on neutron-capture cross sections and reaction rates relevant to the process. In particular, we focus on indirect, experimental techniques to measure radiative neutron-capture rates. While direct measurements are not available at present, but could possibly be realized in the future, the indirect approaches present a first step towards constraining neutron-capture rates of importance to the process.
Cite
@article{arxiv.1904.09962,
title = {Novel Techniques for Constraining Neutron-Capture Rates Relevant for r-Process Heavy-Element Nucleosynthesis},
author = {A. C. Larsen and A. Spyrou and S. N. Liddick and M. Guttormsen},
journal= {arXiv preprint arXiv:1904.09962},
year = {2019}
}
Comments
62 pages, 24 figures, accepted for publication in Progress in Particle and Nuclear Physics