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Using binary population synthesis to examine the impact of binary evolution on the C, N, O, and S-process yields of solar-metallicity low- and intermediate-mass stars

Zara Osborn*, Amanda Karakas, Alex Kemp, Robert Izzard, Devika Kamath, Maria Lugaro

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

Asymptotic giant branch (AGB) stars play a significant role in our understanding of the origin of the elements. They contribute to the abundances of C, N, and approximately 50% of the abundances of the elements heavier than iron. An aspect often neglected in studies of AGB stars is the impact of a stellar companion on AGB stellar evolution and nucleosynthesis. In this study, we update the stellar abundances of AGB stars in the binary population synthesis code BINARY_C and calibrate our treatment of the third dredge-up using observations of Galactic carbon stars. We model stellar populations of low- to intermediate-mass stars at solar-metallicity and examine the stellar wind contributions to C, N, O, Sr, Ba, and Pb yields at binary fractions between 0 and 1. For a stellar population with a binary fraction of 0.7, we find 20-25% less C and s-process elements ejected than from a population composed of only single stars, and we find little change in the N and O yields. We also compare our models with observed abundances from Ba stars and find our models can reproduce most Ba star abundances, but our population estimates a higher frequency of Ba stars with a surface [Ce/Y] > 0.2 dex. Our models also predict the rare existence of Ba stars with masses > 10M.

Original languageEnglish
Article numbere020
Pages (from-to)1-16
Number of pages16
JournalPublications of the Astronomical Society of Australia
Volume42
DOIs
Publication statusPublished - 4 Feb 2025

Bibliographical note

© The Author(s), 2025. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.

Keywords

  • (stars): binaries: general
  • methods: numerical
  • stars: abundances
  • stars: AGB and post-AGB
  • stars: evolution
  • Stars: low-mass

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