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Aluminium-26 production in low- and intermediate-mass binary systems

Research output: Contribution to journalArticleResearchpeer-review

Abstract

Aluminium-26 is a radioactive isotope which can be synthesized within asymptotic giant branch (AGB) stars, primarily through hot bottom burning. Studies exploring26Al production within AGB stars typically focus on single-stars; however, observations show that low- and intermediate-mass stars commonly exist in binaries. We use the binary population synthesis code BINARY C to explore the impact of binary evolution on26Al yields at solar metallicity both within individual AGB stars and a low/intermediate-mass stellar population. We find the key stellar structural condition achieving most26Al overproduction is for stars to enter the thermally pulsing AGB (TP-AGB) phase with small cores relative to their total masses, allowing those stars to spend abnormally long times on the TP-AGB compared to single-stars of identical mass. Our population with a binary fraction of 0.75 has an26Al weighted population yield increase of 25 per cent compared to our population of only single-stars. Stellar-models calculated from the MT STROMLO/MONASH STELLAR STRUCTURE PROGRAM, which we use to test our results from BINARY C and closely examine the interior structure of the overproducing stars, support our BINARY C results only when the stellar envelope gains mass after core-He depletion. Stars which gain mass before core-He depletion still overproduce26Al, but to a lesser extent. This introduces some physical uncertainty into our conclusions as 55 per cent of our26Al overproducing stars gain envelope mass through stellar wind accretion onto pre-AGB objects. Our work highlights the need to consider binary influence on the production of26Al.

Original languageEnglish
Pages (from-to)6059-6077
Number of pages19
JournalMonthly Notices of the Royal Astronomical Society
Volume526
Issue number4
DOIs
Publication statusPublished - Dec 2023

Keywords

  • binaries: general
  • methods: numerical
  • stars: AGB and post-AGB
  • stars: evolution
  • stars: low-mass
  • ARC Centre of Excellence for All Sky Astrophysics in 3 Dimensions

    Kewley, L. (Primary Chief Investigator (PCI)), Stuart B Wyithe, J. (Chief Investigator (CI)), Sadler, E. (Chief Investigator (CI)), Staveley-Smith, L. (Chief Investigator (CI)), Glazebrook, K. (Chief Investigator (CI)), Jackson, C. (Chief Investigator (CI)), Bland-Hawthorn, J. (Chief Investigator (CI)), Asplund, M. B. (Chief Investigator (CI)), Trott, C. M. (Chief Investigator (CI)), Webster, R. (Chief Investigator (CI)), Trenti, M. (Chief Investigator (CI)), Colless, M. (Chief Investigator (CI)), Croom, S. (Chief Investigator (CI)), Ryan-Weber, E. V. (Chief Investigator (CI)), Power, C. (Chief Investigator (CI)), Croton, D. J. (Chief Investigator (CI)), Driver, S. (Chief Investigator (CI)), Abraham, R. (Partner Investigator (PI)), Ball, L. (Partner Investigator (PI)), Bunker, A. (Partner Investigator (PI)), Couch, W. (Partner Investigator (PI)), Dalcanton, J. (Partner Investigator (PI)), Davies, R. L. (Partner Investigator (PI)), Gaensler, B. M. (Partner Investigator (PI)), Hopkins, A. (Partner Investigator (PI)), Kirby, E. (Partner Investigator (PI)), Koribalski, B. (Partner Investigator (PI)), Li, D. (Partner Investigator (PI)), Martin, D. C. (Partner Investigator (PI)), Morales, M. F. (Partner Investigator (PI)), Morganti, R. (Partner Investigator (PI)), Springel, V. (Partner Investigator (PI)), Wise, M. W. (Partner Investigator (PI)) & Karakas, A. (Chief Investigator (CI))

    Monash University – Internal Faculty Contribution

    30/06/1731/12/24

    Project: Research

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