The impact of new (, n) reaction rates on the weak s-process in metal-poor massive stars
arXiv:2504.13766 · doi:10.1007/s41365-026-01975-6
Abstract
Massive stars are significant sites for the weak s-process (ws-process). Ne and O are, respectively, the main neutron source and poison for the ws-process. In the metal-poor stars, the abundance of Ne is limited by the metallicity, so that the contribution of Ne(, n)Mg reaction on the s-process is weaker. Conversely, the O(, n)Ne reaction becomes more prominent in these stars due to the most abundant O in all metallicities. In this work, we calculate the evolution of four metal-poor models () for the Zero-Age Main-Sequence (ZAMS) masses of 15, 20, 25, and 30 M to investigate the effect of reaction rates on the ws-process. We adopt the new O(, n)Ne and O()Ne reaction rates suggested by Best et al. (2013) and Ne(, n)Mg and Ne()Mg from Wiescher et al. (2023). The yields of the s-process isotope with updated reaction rates are compared with the results using default reaction rates from JINA REACLIB. We find that the new O+ reaction rates increase the ws-process mainly in all the stages, while the new Ne+ reaction rates only increase the ws-process in C and Ne burning stages. Updating these new reaction rates would increase the production of ws-process isotopes by tens of times. We also note that for more massive stars, the enhancement by new O+ reaction rates become more significant.
16 pages, 15 figures