Wolf-Rayet stars in the Small Magellanic Cloud as testbed for massive star evolution
arXiv:1709.08727 · doi:10.1051/0004-6361/201731895
Abstract
The majority of Wolf-Rayet (WR) stars represent the stripped cores of evolved massive stars who lost most of their hydrogen envelope. In low metallicity environments, such as the Small Magellanic Cloud (SMC), stellar winds are weaker and binary interaction is expected to dominate WR-star formation. However, the WR binary fraction appears to be ~40% at any metallicity. We use the recently determined physical properties of the twelve known SMC WR stars to explore their possible formation channels through comparisons with grids of SMC models, simulated with the detailed stellar evolution code MESA. These include models of rapidly rotating single stars, which experience (partial) chemically homogeneous evolution (CHE). We find that CHE is not able to account for the majority of the SMC WR stars. However, the apparently single WN star SMC AB12 and the double WR system SMC AB5 (HD 5980) appear consistent with this channel. We also analyze core helium burning stellar models assuming constant hydrogen gradients in their envelopes. We find a dichotomy in the envelope hydrogen gradients required to explain the observed temperatures of the SMC WR stars. Shallow gradients are found for the WR stars with O star companions, consistent with binary models where mass transfer occurs early, which is in agreement with their binary properties. On the other hand, much steeper hydrogen gradients are inferred for the group of hot apparently single WR stars. Since the hydrogen profiles in post main sequence models of massive stars become steeper with time, we conclude that these stars have likely been stripped by a companion during a phase of common envelope evolution. The companions, either main sequence stars or compact objects, are expected to still be present. A corresponding search might identify the first immediate double black hole binary progenitor with masses as high as those detected in GW150914.
17 pages, 23 figures, accepted by Astronomy and Astrophysics
References in corpus (22)
- Modules for Experiments in Stellar Astrophysics (MESA)
- GW170104: Observation of a 50-Solar-Mass Binary Black Hole Coalescence at Redshift 0.2
- Binary interaction dominates the evolution of massive stars
- Physical Properties of Wolf-Rayet Stars
- Pre-Supernova Evolution of Massive Single and Binary Stars
- The Galactic WN stars: Spectral analyses with line-blanketed model atmospheres versus stellar evolution models with and without rotation
- The empirical metallicity dependence of the mass-loss rate of O- and early B-type stars
- Rotational mixing in massive binaries: detached short-period systems
- The VLT-FLAMES survey of massive stars: rotation and nitrogen enrichment as the key to understanding massive star evolution
- Luminous Blue Variables are Antisocial: Their Isolation Implies that they are Kicked Mass Gainers in Binary Evolution
- The VLT-FLAMES survey of massive stars: Mass loss and rotation of early-type stars in the SMC
- Common envelope ejection in massive binary stars - Implications for the progenitors of GW150914 and GW151226
- Wolf-Rayet stars in the Small Magellanic Cloud: I. Analysis of the single WN stars
- Evolution of Mass Functions of Coeval Stars through Wind Mass Loss and Binary Interactions
- The metallicity dependence of envelope inflation in massive stars
- A FUSE Survey of the Rotation Rates of Very Massive Stars in the Small and Large Magellanic Clouds
- Properties of WNh stars in the Small Magellanic Cloud: evidence for homogeneous evolution
- The Period-Luminosity Relation of Red Supergiant Stars in the Small Magellanic Cloud
- The HD5980 multiple system: Masses and evolutionary status
- An X-ray Survey of Wolf-Rayet Stars in the Magellanic Clouds. I. The Chandra ACIS Dataset
- Wolf-Rayet spin at low metallicity and its implication for Black Hole formation channels
- An X-ray Survey of Wolf-Rayet Stars in the Magellanic Clouds. II. The ROSAT PSPC and HRI Datasets
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- Constraining mixing in massive stars in the Small Magellanic Cloud
- Testing massive star evolution, star-formation history and feedback at low metallicity : Spectroscopic analysis of OB stars in the SMC Wing
- Why binary interaction does not necessarily dominate the formation of Wolf-Rayet stars at low metallicity
- Massive donors in interacting binaries: effect of metallicity
- Partial-envelope stripping and nuclear-timescale mass transfer from evolved supergiants at low metallicity
- The contribution from stars stripped in binaries to cosmic reionization of hydrogen and helium
- The excess of cool supergiants from contemporary stellar evolution models defies the metallicity-independent Humphreys-Davidson limit
- Nuclear timescale mass transfer in models of supergiant and ultra-luminous X-ray binaries
- A synthetic population of Wolf-Rayet stars in the LMC based on detailed single and binary star evolution models
- The Sunburst Arc with JWST: I. Detection of Wolf-Rayet stars injecting nitrogen into a low-metallicity, proto-globular cluster leaking ionizing photons
- Numerical experiments to help understand cause and effect in massive star evolution
- A theoretical investigation of the Humphreys-Davidson limit at high and low metallicity
- Aluminium-26 from massive binary stars I: non-rotating models
- Physics and evolution of the most massive stars in 30 Dor. Mass loss, envelope inflation, and a variable upper stellar mass limit
- The Shortest-period Wolf-Rayet binary in the Small Magellanic Cloud: Part of a high-order multiple system
- A dearth of young and bright massive stars in the Small Magellanic Cloud
- The Tarantula Massive Binary Monitoring V. R 144: a wind-eclipsing binary with a total mass > 140 Msun
- SNAPSHOT: Connections between Internal and Surface Properties of Massive Stars
- How common is LBV S Dor variability at low metallicity?
- An absence of binary companions to Wolf-Rayet stars in the Small Magellanic Cloud: implications for mass loss and black hole masses at low metallicity
- The effect of mass loss in models of red supergiants in the Small Magellanic Cloud
- Exploring the borderline between stable mass transfer and mergers in close binary evolution
- Delayed Photons from Binary Evolution Help Reionize the Universe
- The Wolf-Rayet binaries of the nitrogen sequence in the Large Magellanic Cloud: spectroscopy, orbital analysis, formation, and evolution
- Impact of main-sequence mass loss on the appearance, structure and evolution of Wolf-Rayet stars
- Dissecting the microphysics behind the metallicity-dependence of massive stars radii
- Spectroscopic and evolutionary analyses of the binary system AzV 14 outline paths toward the WR stage at low metallicity
- Populations of evolved massive binary stars in the Small Magellanic Cloud I: Predictions from detailed evolution models
- A Study of Wolf-Rayet stars Formed via Chemically Homogeneous Evolution
- Investigating 39 Galactic Wolf-Rayet stars with VLTI/GRAVITY: Uncovering A Long Period Binary Desert
- The Physical Parameters of Four WC-type Wolf-Rayet Stars in the Large Magellanic Cloud: Evidence of Evolution
- The mass distribution of stars stripped in binaries: The effect of metallicity
- A low-metallicity massive contact binary undergoing slow Case A mass transfer: A detailed spectroscopic and orbital analysis of SSN 7 in NGC 346 in the SMC
- Populations of evolved massive binary stars in the Small Magellanic Cloud II: Predictions from rapid binary evolution
- Enhanced mass-loss rate evolution of stars with and missing optically-observed type II core-collapse supernovae
- Low-metallicity massive single stars with rotation. III. Source of ionization and C-IV emission in I Zw 18
- The drastic impact of Eddington-limit induced mass ejections on massive star populations
- Metal-poor single Wolf-Rayet stars: The interplay of optically thick winds and rotation
- Impact of accretion-induced chemically homogeneous evolution on stellar and compact binary populations
- A constant upper luminosity limit of cool supergiant stars down to the extremely low metallicity of I Zw 18
- Stellar response after stripping as a model for common-envelope outcomes