English

r-Process Nucleosynthesis and Radioactively Powered Transients from Magnetar Giant Flares

High Energy Astrophysical Phenomena 2025-07-03 v2

Abstract

We present nucleosynthesis and light-curve predictions for a new site of the rapid neutron capture process (rr-process) from magnetar giant flares (GFs). Motivated by observations indicating baryon ejecta from GFs, Cehula et al. (2024) proposed mass ejection occurs after a shock is driven into the magnetar crust during the GF. We confirm using nuclear reaction network calculations that these ejecta synthesize moderate yields of third-peak rr-process nuclei and more substantial yields of lighter rr-nuclei, while leaving a sizable abundance of free neutrons in the outermost fastest expanding ejecta layers. The final rr-process mass fraction and distribution are sensitive to the relative efficiencies of α\alpha-capture and nn-capture freeze-outs. We use our nucleosynthesis output in a semi-analytic model to predict the light curves of novae breves, the transients following GFs powered by radioactive decay. For a baryonic ejecta mass similar to that inferred of the 2004 Galactic GF from SGR 1806-20, we predict a peak UV/optical luminosity of 1039\sim 10^{39}-1040ergs110^{40}\,\rm erg\,s^{-1} at 10\sim 10-1515 minutes, rendering such events potentially detectable following a gamma-ray trigger by wide-field transient monitors such as ULTRASAT/UVEX to several Mpc. The peak luminosity and timescale of the transient increase with the GF strength due to the larger ejecta mass. Although GFs likely contribute 1-10% of the total Galactic rr-process budget, their short delay-times relative to star-formation make them an attractive source to enrich the earliest generations of stars.

Keywords

Cite

@article{arxiv.2501.17253,
  title  = {r-Process Nucleosynthesis and Radioactively Powered Transients from Magnetar Giant Flares},
  author = {Anirudh Patel and Brian D. Metzger and Jared A. Goldberg and Jakub Cehula and Todd A. Thompson and Mathieu Renzo},
  journal= {arXiv preprint arXiv:2501.17253},
  year   = {2025}
}

Comments

19 pages, 9 figures