The initial spin distribution of B-type stars revealed by the split main sequences of young star clusters
arXiv:2211.15794 · doi:10.1051/0004-6361/202245413
Abstract
Spectroscopic observations of stars in young open clusters have revealed evidence for a dichotomous distribution of stellar rotational velocities, with 10-30% of stars rotating slowly and the remaining 70-90% rotating fairly rapidly. At the same time, high-precision multiband photometry of young star clusters shows a split main sequence band, which is again interpreted as due to a spin dichotomy. Recent papers suggest that extreme rotation is required to retrieve the photometric split. Our new grids of MESA models and the prevalent SYCLIST models show, however, that initial slow (0-35% of the linear Keplerian rotation velocities) and intermediate (50-65% of the Keplerian rotation velocities) rotation are adequate to explain the photometric split. These values are consistent with the recent spectroscopic measurements of cluster and field stars, and are likely to reflect the birth spin distributions of upper main-sequence stars. A fraction of the initially faster-rotating stars may be able to reach near-critical rotation at the end of their main-sequence evolution and produce Be stars in the turn-off region of young star clusters. However, we find that the presence of Be stars up to two magnitudes below the cluster turnoff advocates for a crucial role of binary interaction in creating Be stars. We argue that surface chemical composition measurements may help distinguish these two Be star formation channels. While only the most rapidly rotating, and therefore nitrogen-enriched, single stars can evolve into Be stars, slow pre-mass-transfer rotation and inefficient accretion allows for mild or no enrichment even in critically rotating accretion-induced Be stars. Our results shed new light on the origin of the spin distribution of young and evolved B-type main sequence stars.
18 pages, 14 figures. Accepted for publication in A&A
References in corpus (23)
- Modules for Experiments in Stellar Astrophysics (MESA)
- 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
- An eclipsing binary distance to the Large Magellanic Cloud accurate to 2 per cent
- Catalogue of high-mass X-ray binaries in the Galaxy ( edition)
- On the formation of Be stars through binary interaction
- Constraining mixing in massive stars in the Small Magellanic Cloud
- The Detection and Characterization of Be+sdO Binaries from HST/STIS FUV Spectroscopy
- Investigating the lack of main-sequence companions to massive Be stars
- Rotating Stellar Models Can Account for the Extended Main Sequence Turnoffs in Intermediate Age Clusters
- NGC 1866: First Spectroscopic Detection of Fast Rotating Stars in a Young LMC Cluster
- Stellar mergers as the origin of the blue main-sequence band in young star clusters
- Detection of a Hot Subdwarf Companion to the Be Star FY Canis Majoris
- A high fraction of Be stars in young massive clusters: evidence for a large population of near-critically rotating stars
- Effects of close binary evolution on the main-sequence morphology of young star clusters
- Multiple stellar populations in Magellanic Cloud clusters. V. The split main sequence of the young cluster NGC1866
- The panchromatic view of the Magellanic Clouds from Classical Cepheids. I. Distance, Reddening and Geometry of the Large Magellanic Cloud disk
- Stars caught in the braking stage in young Magellanic Clouds clusters
- Detection of the Ultraviolet Spectrum of the Hot Subdwarf Companion of 60 Cygni (B1 Ve) from a Survey of IUE Spectra of Be Stars
- 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 II. Multiplicity properties of the massive-star population
- The Single Star Path to Be Stars
- Discovery of Extended Main Sequence Turn-offs in Four Young Massive Clusters in the Magellanic Clouds
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- Boron depletion in Galactic early B-type stars reveals two different main sequence star populations
- Tracing the evolution of short-period binaries with super-synchronous fast rotators
- Analytic approximations for massive close post-mass transfer binary systems
- A comprehensive grid of massive binary evolution models for the Galaxy - Surface properties of post-mass transfer stars
- Thermal-timescale accretion does not always yield critical rotation in mass gainers
- NGC 663 as a laboratory for massive star evolution
- Quantifying Systematic Age Discrepancies in Very Young Star Clusters
- The effect of near-core mixing on rejuvenation and the asteroseismic properties of massive accretors