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The impact of individual nuclear masses on $r$-process abundances

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arxiv 1505.07789 v1 pith:JGVGZIIS submitted 2015-05-28 nucl-th astro-ph.SR

classification nucl-thastro-ph.SR
keywords processmassmassesabundancechangeimpactindividualnuclear
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abstract

We have performed for the first time a comprehensive study of the sensitivity of $r$-process nucleosynthesis to individual nuclear masses across the chart of nuclides. Using the latest version (2012) of the Finite-Range Droplet Model, we consider mass variations of $\pm0.5$ MeV and propagate each mass change to all affected quantities, including $Q$-values, reaction rates, and branching ratios. We find such mass variations can result in up to an order of magnitude local change in the final abundance pattern produced in an $r$-process simulation. We identify key nuclei whose masses have a substantial impact on abundance predictions for hot, cold, and neutron star merger $r$-process scenarios and could be measured at future radioactive beam facilities.

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  1. A nuclear mass model rooted in chiral effective field theory

    nucl-th 2025-04 conditional novelty 6.0 of 10

    A Hartree-Fock model with 11 chiral low-energy constants fitted to 18 nuclei reaches 3.5 MeV RMS on 107 even-even nuclei, worse than a liquid-drop fit to the same data.

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