Chemical fingerprints of binary mass transfer in massive stars
arXiv:2608.11940 · doi:10.1038/s41550-026-02943-1
Abstract
The majority of massive stars are born in close binary systems. As stars expand when they age, mass transfer or even a merger with their companion is inevitable. However, most binary interaction products appear as single stars, such that the main evidence of their exciting past is lost. In a comprehensive grid of detailed massive binary evolution models we find systematic trends in chemical surface abundances that allow identifying the past mass gainers. We develop an analytic framework which is independent of specific evolutionary models, to constrain the amount and composition of the accreted material from their observed surface abundances. This yields tight constraints on the uncertain mass transfer physics in massive binary stars and allows us to reconstruct the past evolutionary history of the progenitor binary system. This method, which is shown to also constrain binary mergers (for example, SN 1987A), is applied to some of the best-studied OB stars so far. For γ Columbae, suggested to be an envelope-stripped star, we show that it is a mass gainer instead, whose companion star likely formed a stripped-envelope supernova. Our results highlight surface abundance measurements as a powerful tool to improve our understanding of massive binary systems evolving towards supernovae and compact object binaries.
Published in Nature Astronomy. Link to the paper: https://www.nature.com/articles/s41550-026-02943-1
References in corpus (36)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Binary interaction dominates the evolution of massive stars
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Pre-Supernova Evolution of Massive Single and Binary Stars
- Present-day cosmic abundances. A comprehensive study of nearby early B-type stars and implications for stellar and Galactic evolution and interstellar dust models
- How mergers magnetise massive stars
- The VLT-FLAMES survey of massive stars: rotation and nitrogen enrichment as the key to understanding massive star evolution
- The evolution of rotating very massive stars with LMC composition
- Luminous Blue Variables and superluminous supernovae from binary mergers
- The spectroscopic Hertzsprung-Russell diagram
- Common envelope ejection in massive binary stars - Implications for the progenitors of GW150914 and GW151226
- Variability of OB stars from TESS southern Sectors 1-13 and high-resolution IACOB and OWN spectroscopy
- Evolution of surface CNO abundances in massive stars
- Detailed models of interacting short-period massive binary stars
- Effects of close binary evolution on the main-sequence morphology of young star clusters
- New magnetic field measurements of beta Cephei stars and Slowly Pulsating B stars
- The contribution from stars stripped in binaries to cosmic reionization of hydrogen and helium
- Nucleosynthesis of binary-stripped stars
- Binarity at LOw Metallicity (BLOeM): a spectroscopic VLT monitoring survey of massive stars in the SMC
- Columbae: the recently stripped, pulsating core of a massive star
- A high fraction of close massive binary stars at low metallicity
- The Art of Modeling Stellar Mergers and the Case of the B[e] Supergiant R4 in the Small Magellanic Cloud
- Exploring the borderline between stable mass transfer and mergers in close binary evolution
- Boron depletion in Galactic early B-type stars reveals two different main sequence star populations
- Populations of evolved massive binary stars in the Small Magellanic Cloud I: Predictions from detailed evolution models
- Angular Sizes and Effective Temperatures of O-type Stars from Optical Interferometry with the CHARA Array
- The IACOB project XIII. Helium enrichment in O-type stars as a tracer of past binary interaction
- Populations of evolved massive binary stars in the Small Magellanic Cloud II: Predictions from rapid binary evolution
- Binary mass transfer in 3D: Mass Transfer Rate and Morphology
- The IACOB project XIV. New clues on the location of the TAMS in the massive star domain
- A comprehensive grid of massive binary evolution models for the Galaxy - Surface properties of post-mass transfer stars
- The Radial and Rotational Velocity of Ophiuchi
- Dormant black hole candidates from Gaia DR3 summary diagnostics
- Binarity at LOw Metallicity (BLOeM): Projected rotational velocities
- Mixing due to internal gravity waves can explain the CNO surface abundances of B-type detached eclipsing binaries and single stars
- Runaway BN supergiant star HD 93840: Progenitor of an imminent core-collapse supernova above the Galactic plane