A stringent upper limit on Be star fractions produced by binary interaction
arXiv:2106.12263 · doi:10.1051/0004-6361/202141269
Abstract
Context. Binary evolution can result in fast-rotating stars, predicted to be observable as Be stars, through accretion of angular momentum during mass-transfer phases. Despite numerous observational evidence pointing to this possibly being the dominant Be formation channel, current models struggle to produce a satisfactory description of Be star populations. Aims. Given distinct uncertainties in detailed binary evolution calculations, we investigate a rigorous and model independent upper limit for the production of Be stars through binary interaction and aim to confront this limit with observations of Be stars in young star clusters. Methods. Using extreme assumptions, we calculate the number ratio of post-interaction to pre-interaction binary systems in a coeval population, which describes an upper limit to Be star formation through mass-transfer. A detailed comparison is made between our derived upper limit and relevant observations of Be stars, which allows us to probe several aspects of binary star physics. Results. We find that in coeval populations, binary interaction can at most account for one third of all main-sequence stars being Be stars. Near the cluster turn-off region, this limit appears to be realised in the clusters studied. Away from the turn-off, applying simple assumptions about which systems undergo unstable mass-transfer produces a good fit to the observed Be fraction as a function of mass. Conclusions. We find that assuming distinct physics, binary evolution alone can in principle match the high numbers of Be stars observed in open clusters. Whether the required binary physics is realised in nature remains to be investigated.
Accepted for publication in A&A
References in corpus (27)
- 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
- Catalogue of high-mass X-ray binaries in the Galaxy ( edition)
- How mergers magnetise massive stars
- An excess of massive stars in the local 30 Doradus starburst
- Efficiency of mass transfer in massive close binaries, Tests from double-lined eclipsing binaries in the SMC
- Luminous Blue Variables and superluminous supernovae from binary mergers
- The spectroscopic Hertzsprung-Russell diagram of Galactic massive stars
- On the formation of Be stars through binary interaction
- Mass Transfer from Giant Donors
- Binary Stars in the Orion Nebula Cluster
- Constraining mixing in massive stars in the Small Magellanic Cloud
- Evolution of Mass Functions of Coeval Stars through Wind Mass Loss and Binary Interactions
- Exploring the consequences of pairing algorithms for binary stars
- Investigating the lack of main-sequence companions to massive Be stars
- Effects of close binary evolution on the main-sequence morphology of young star clusters
- How stellar rotation shapes the colour magnitude diagram of the massive intermediate-age star cluster NGC 1846
- The young massive SMC cluster NGC 330 seen by MUSE. I. Observations and stellar content
- Evolution of stellar collision products in open clusters. II. A grid of low-mass collisions
- The Single Star Path to Be Stars
- Stellar rotation and the extended main sequence turnoff in the open cluster NGC 5822
- Be Star Disk Models in Consistent Vertical Hydrostatic Equilibrium
- Nonconservative Mass Transfer in Massive Binaries and the Formation of Wolf-Rayet+O Binaries
- Swift J004427.3-734801- a probable Be/white dwarf system in the Small Magellanic Cloud
- Rotational Mixing in Be Stars: Nitrogen Abundances for a Sample of Be Stars from the MiMeS Survey