Threshold-Aligned Pygmy Dipole Strength in Astrophysical $(n,\gamma)$ and $(\gamma,n)$ Reactions
Abstract
Reaction-rate calculations relevant to r-process nucleosynthesis depend sensitively on the nuclear -strength function (SF). Here we investigate the impact of low-lying pygmy dipole strength (PDS) in and reactions using SF based on relativistic nuclear energy density functional theory and propagate these strengths into Hauser--Feshbach statistical model calculations of the reaction rates. We show that considerable reaction-rate enhancements at temperatures relevant for r-process nucleosynthesis are governed by the alignment of the pygmy dipole strength energy with the neutron separation threshold rather than by the total low-energy strength. Consequently, nuclei such as Ni and Sn, where the PDS energy- alignment occurs, exhibit the strongest effects on reaction-rate enhancements. These results demonstrate that modeling reliable reaction rates in r-process nucleosynthesis necessitates accurate microscopic descriptions of low-energy dipole strength, in close synergy with experimental investigations in the vicinity of neutron threshold.
Cite
@article{arxiv.2603.12928,
title = {Threshold-Aligned Pygmy Dipole Strength in Astrophysical $(n,\gamma)$ and $(\gamma,n)$ Reactions},
author = {T. Ghosh and A. Kaur and N. Paar},
journal= {arXiv preprint arXiv:2603.12928},
year = {2026}
}