Improved predictions of nuclear reaction rates with the TALYS reaction code for astrophysical applications
S. Goriely, S. Hilaire, A.J. Koning

TL;DR
This paper presents an enhanced version of the TALYS nuclear reaction code, enabling more accurate and reliable predictions of astrophysical reaction rates, especially for exotic nuclei, by testing and improving upon previous approximations.
Contribution
The updated TALYS code incorporates new physics models and tests previous approximations, providing a comprehensive tool for astrophysical nuclear reaction rate predictions.
Findings
TALYS predictions can differ significantly from previous codes.
Pre-equilibrium processes notably affect neutron-rich nuclei rates.
First calculation of Maxwellian-averaged (n,2n) reaction rates for all nuclei.
Abstract
Nuclear reaction rates of astrophysical applications are traditionally determined on the basis of Hauser-Feshbach reaction codes. These codes adopt a number of approximations that have never been tested, such as a simplified width fluctuation correction, the neglect of delayed or multiple-particle emission during the electromagnetic decay cascade, or the absence of the pre-equilibrium contribution at increasing incident energies. The reaction code TALYS has been recently updated to estimate the Maxwellian-averaged reaction rates that are of astrophysical relevance. These new developments enable the reaction rates to be calculated with increased accuracy and reliability and the approximations of previous codes to be investigated. The TALYS predictions for the thermonuclear rates of relevance to astrophysics are detailed and compared with those derived by widely-used codes for the…
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