The Effects of $r$-Process Enrichment in Hydrogen-Rich Supernovae
Abstract
Core-collapse supernovae are candidate sites for the rapid neutron capture process (-process). We explore the effects of enrichment from -process nuclei on the light-curves of hydrogen-rich supernovae (SNe IIP) and assess the detectability of these signatures. We modify the radiation transport code to include the approximate effects of opacity and radioactive heating from -process elements in the SN ejecta. We present models spanning a range of total -process masses and their assumed radial distribution within the ejecta, finding that is sufficient to induce appreciable differences in their light-curves as compared to ordinary SNe IIP (without any -process elements). The primary photometric signatures of -process enrichment include a shortening of the plateau phase, coinciding with the hydrogen-recombination photosphere retreating to the -process-enriched layers, and a steeper post-plateau decline associated with a reddening of the SN colors. We compare our -process-enriched models to ordinary IIP models and observational data, showing that yields of are potentially detectable across several of the metrics used by transient observers, provided that the -process rich layers are mixed halfway to the ejecta surface. This detectability threshold can roughly be reproduced analytically using a two-zone ("kilonova within a supernova") picture. Assuming that a small fraction of SNe produce a detectable -process yield , and respecting constraints on the total Galactic production rate, we estimate that SNe need be observed to find one -enriched event, a feat that may become possible with the Vera Rubin Observatory.
Keywords
Cite
@article{arxiv.2401.13035,
title = {The Effects of $r$-Process Enrichment in Hydrogen-Rich Supernovae},
author = {Anirudh Patel and Jared A. Goldberg and Mathieu Renzo and Brian D. Metzger},
journal= {arXiv preprint arXiv:2401.13035},
year = {2024}
}
Comments
15 pages, 7 figures, 3 appendices