The cosmic carbon footprint of massive stars stripped in binary systems
arXiv:2110.04131 · doi:10.3847/1538-4357/ac2f44
Abstract
The cosmic origin of carbon, a fundamental building block of life, is still uncertain. Yield predictions for massive stars are almost exclusively based on single star models, even though a large fraction interact with a binary companion. Using the MESA stellar evolution code, we predict the carbon ejected in the winds and supernovae of single and binary-stripped stars at solar metallicity. We find that binary-stripped stars are twice as efficient at producing carbon (1.5-2.6 times, depending on choices on the slope of the initial mass function and black hole formation). We confirm that this is because the convective helium core recedes in stars that have lost their hydrogen envelope, as noted previously. The shrinking of the core disconnects the outermost carbon-rich layers created during the early phase of helium burning from the more central burning regions. The same effect prevents carbon destruction, even when the supernova shock wave passes. The yields are sensitive to the treatment of mixing at convective boundaries, specifically during carbon-shell burning (variations up to 40%) and improving upon this should be a central priority for more reliable yield predictions. The yields are robust (variations less than 0.5%) across our range of explosion assumptions. Black hole formation assumptions are also important, implying that the stellar graveyard now explored by gravitational-wave detections may yield clues to better understand the cosmic carbon production. Our findings also highlight the importance of accounting for binary-stripped stars in chemical yield predictions and motivates further studies of other products of binary interactions.
20 pages, 8 figures, 3 tables, Accepted ApJ
References in corpus (26)
- The NumPy array: a structure for efficient numerical computation
- 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
- Galactic chemical evolution: Carbon through Zinc
- The High Angular Resolution Multiplicity of Massive Stars
- Updated Electron-Conduction Opacities: The Impact on Low-Mass Stellar Models
- An excess of massive stars in the local 30 Doradus starburst
- The Evolution of Massive Helium Stars Including Mass Loss
- The VLT-FLAMES survey of massive stars: constraints on stellar evolution from the chemical compositions of rapidly rotating Galactic and Magellanic Cloud B-type stars
- The VLT-FLAMES survey of massive stars: rotation and nitrogen enrichment as the key to understanding massive star evolution
- Coulomb tunneling for fusion reactions in dense matter: Path integral Monte Carlo versus mean field
- The evolution of CNO isotopes: a new window on cosmic star-formation history and the stellar IMF in the age of ALMA
- Implications of the metallicity dependence of Wolf-Rayet winds
- Carbon and oxygen abundances in stellar populations
- On Variations Of Pre-Supernova Model Properties
- Evolution of surface CNO abundances in massive stars
- Grids of stellar models with rotation IV. Models from 1.7 to 120 Msun at a metallicity Z = 0.0004
- Dust masses for SN 1980K, SN1993J and Cassiopeia A from red-blue emission line asymmetries
- Grids of stellar models with rotation: V. Models from 1.7 to 120 Msun at zero metallicity
- Revisiting the explodability of single massive star progenitors of stripped-envelope supernovae
- On the variation of carbon abundance in galaxies and its implications
- Revisiting the Impact of Dust Production from Carbon-Rich Wolf-Rayet Binaries
- The Gaia-ESO Survey: Carbon abundance in the Galactic thin and thick disks
- Nucleosynthesis Constraints on the Energy Growth Timescale of a Core-collapse Supernova Explosion
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- Pre-supernova evolution and final fate of stellar mergers and accretors of binary mass transfer
- The evolution of CNO elements in galaxies
- The temperature dependency of Wolf-Rayet-type mass loss: An exploratory study for winds launched by the hot iron bump
- Nucleosynthesis of binary-stripped stars
- It's written in the massive stars: The role of stellar physics in the formation of black holes
- The Role of Acetylene in the Chemical Evolution of Carbon Complexity
- The locations of features in the mass distribution of merging binary black holes are robust against uncertainties in the metallicity-dependent cosmic star formation history
- The R-Process Alliance: Fifth Data Release from the Search for R-Process-Enhanced Metal-poor Stars in the Galactic Halo with the GTC
- Observational predictions for Thorne-Żytkow objects
- Modeling the chemical enrichment history of the Bulge Fossil Fragment Terzan 5
- Aluminium-26 from massive binary stars III. Binary stars up to core-collapse and their impact on the early Solar System
- Binary progenitor systems for Type Ic supernovae
- SN 2019ewu: A Peculiar Supernova with Early Strong Carbon and Weak Oxygen Features from a New Sample of Young SN Ic Spectra
- Parameterisations of thermal bomb explosions for core-collapse supernovae and 56Ni production
- Observational constraints on the origin of the elements. IX. 3D NLTE abundances of metals in the context of Galactic Chemical Evolution Models and 4MOST
- Bringing Stellar Evolution & Feedback Together: Summary of proposals from the Lorentz Center Workshop, 2022
- Recovery of the low- and high-mass end slopes of the IMF in massive early-type galaxies using detailed elemental abundances
- Yields from massive stars in binaries. Chemical evolution of the Milky Way disk
- Carbon from massive binary-stripped stars over cosmic time: effect of metallicity
- Near-Eddington mass loss of hydrogen-rich Wolf-Rayet stars
- Dynamically consistent analysis of Galactic WN4b stars
- SNR G292.0+1.8: A Remnant of a Low-Mass Progenitor Stripped-Envelope Supernova