Neutron Star Mergers and their Impact on Second Generation Star Formation in the Early Universe

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Hauptverfasser: Skinner, Danielle, Wise, John H.
Format: Preprint
Veröffentlicht: 2023
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author Skinner, Danielle
Wise, John H.
author_facet Skinner, Danielle
Wise, John H.
contents The exact evolution of elements in the universe, from primordial to heavier elements produced via the r-process, is still under scrutiny. The supernova deaths of the very first stars led to the enrichment of their local environments, and can leave behind neutron stars (NS) as remnants. These remnants can end up in binary systems with other NSs, and eventually merge, allowing for the r-process to occur. We study the scenario where a single NS merger (NSM) enriches a halo early in its evolution to understand the impact on the second generation of stars and their metal abundances. We perform a suite of high resolution cosmological zoom-in simulations using Enzo where we have implemented a new NSM model varying the explosion energy and the delay time. In general, a NSM leads to significant r-process enhancement in the second generation of stars in a galaxy with a stellar mass of $\sim 10^5 \mathrm{M}_{\odot}$ at redshift 10. A high explosion energy leads to a Pop II mass fraction of 72% being highly enhanced with r-process elements, while a lower explosion energy leads to 80% being enhanced, but only 14% being highly enhanced. When the NSM has a short delay time of 10 Myr, only 5% of the mass fraction of Pop II stars is highly enhanced, while 64% is highly enhanced for the longest delay time of 100 Myr. This work represents a stepping stone towards understanding how NSMs impact their environments and metal abundances of descendant generations of stars.
format Preprint
id arxiv_https___arxiv_org_abs_2307_10354
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Neutron Star Mergers and their Impact on Second Generation Star Formation in the Early Universe
Skinner, Danielle
Wise, John H.
Astrophysics of Galaxies
The exact evolution of elements in the universe, from primordial to heavier elements produced via the r-process, is still under scrutiny. The supernova deaths of the very first stars led to the enrichment of their local environments, and can leave behind neutron stars (NS) as remnants. These remnants can end up in binary systems with other NSs, and eventually merge, allowing for the r-process to occur. We study the scenario where a single NS merger (NSM) enriches a halo early in its evolution to understand the impact on the second generation of stars and their metal abundances. We perform a suite of high resolution cosmological zoom-in simulations using Enzo where we have implemented a new NSM model varying the explosion energy and the delay time. In general, a NSM leads to significant r-process enhancement in the second generation of stars in a galaxy with a stellar mass of $\sim 10^5 \mathrm{M}_{\odot}$ at redshift 10. A high explosion energy leads to a Pop II mass fraction of 72% being highly enhanced with r-process elements, while a lower explosion energy leads to 80% being enhanced, but only 14% being highly enhanced. When the NSM has a short delay time of 10 Myr, only 5% of the mass fraction of Pop II stars is highly enhanced, while 64% is highly enhanced for the longest delay time of 100 Myr. This work represents a stepping stone towards understanding how NSMs impact their environments and metal abundances of descendant generations of stars.
title Neutron Star Mergers and their Impact on Second Generation Star Formation in the Early Universe
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2307.10354