English

Decoding the compositions of four bright $r$-process-enhanced stars

Solar and Stellar Astrophysics 2023-08-02 v1 Astrophysics of Galaxies

Abstract

There has been a concerted effort in recent years to identify the astrophysical sites of the rr-process that can operate early in the Galaxy. The discovery of many rr-process-enhanced (RPE) stars (especially by the RR-process Alliance collaboration) has significantly accelerated this effort. However, only limited data exist on the detailed elemental abundances covering the primary neutron-capture peaks. Subtle differences in the structure of the rr-process pattern, such as the relative abundances of elements in the third peak, in particular, are expected to constrain the rr-process sites further. Here, we present a detailed elemental-abundance analysis of four bright RPE stars selected from the HESP-GOMPA survey. Observations were carried out with the 10-m class telescope Gran Telescopio Canarias (GTC), Spain. The high spectral signal-to-noise ratios obtained allow us to derive abundances for 20 neutron-capture elements, including the third rr-process peak element osmium (Os). We detect thorium (Th) in two stars, which we use to estimate their ages. We discuss the metallicity evolution of Mg, Sr, Ba, Eu, Os, and Th in rr-II and rr-I stars, based on a compilation of RPE stars from the literature. The strontium (Sr) abundance trend with respect to europium (Eu) suggests the need for an additional production site for Sr (similar to several earlier studies); this requirement could be milder for yttrium (Y) and zirconium (Zr). We also show that there could be some time delay between rr-II and rr-I star formation, based on the Mg/Th abundance ratios.

Keywords

Cite

@article{arxiv.2307.10762,
  title  = {Decoding the compositions of four bright $r$-process-enhanced stars},
  author = {Pallavi Saraf and Carlos Allende Prieto and Thirupathi Sivarani and Avrajit Bandyopadhyay and Timothy C. Beers and A. Susmitha},
  journal= {arXiv preprint arXiv:2307.10762},
  year   = {2023}
}

Comments

33 pages, 22 figures, Accepted for publication in MNRAS

R2 v1 2026-06-28T11:35:46.193Z