Carbon star formation as seen through the non-monotonic initial-final mass relation
arXiv:2007.04163 · doi:10.1038/s41550-020-1132-1
Abstract
The initial-final mass relation (IFMR) links the birth mass of a star to the mass of the compact remnant left at its death. While the relevance of the IFMR across astrophysics is universally acknowledged, not all of its fine details have yet been resolved. A new analysis of a few carbon-oxygen white dwarfs in old open clusters of the Milky Way led us to identify a kink in the IFMR, located over a range of initial masses, . The kink's peak in WD mass of is produced by stars with , corresponding to ages of about Gyr. Interestingly, this peak coincides with the initial mass limit between low-mass stars that develop a degenerate helium core after central hydrogen exhaustion, and intermediate-mass stars that avoid electron degeneracy. We interpret the IFMR kink as the signature of carbon star formation in the Milky Way. This finding is critical to constraining the evolution and chemical enrichment of low-mass stars, and their impact on the spectrophotometric properties of galaxies.
Authors' version of the main article (43 pages) and Supplementary Information (12 pages) combined into a single pdf (55 pages). The Nature Astronomy published article is available at this url: https://www.nature.com/articles/s41550-020-1132-1
References in corpus (11)
- The Gaia mission
- The Dawes Review 2: Nucleosynthesis and stellar yields of low and intermediate-mass single stars
- Evidence for TP-AGB stars in high redshift galaxies, and their effect on deriving stellar population parameters
- The Initial-Final Mass Relation: Direct Constraints at the Low Mass End
- Constraining the thermally-pulsing asymptotic giant branch phase with resolved stellar populations in the Small Magellanic Cloud
- Synthetic photometry for carbon-rich giants. IV. An extensive grid of dynamic atmosphere and wind models
- An extensive grid of DARWIN models for M-type AGB stars I. Mass-loss rates and other properties of dust-driven winds
- The evolution of DARWIN: current status of wind models for AGB stars
- Carbon star wind models at solar and sub-solar metallicities: a comparative study. I. Mass loss and the properties of dust-driven winds
- The onset of the AGB wind tied to a transition between sequences in the period-luminosity diagram
- A Novel Approach to Constrain Rotational Mixing & Convective-Core Overshoot in Stars Using the Initial-Final Mass Relation
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- Alkali metals in white dwarf atmospheres as tracers of ancient planetary crusts
- Understanding the evolution and dust formation of carbon stars in the LMC with a look at the JWST
- Barium and related stars, and their white-dwarf companions. III. The masses of the white dwarfs
- Carbon, isotopic ratio C/C and nitrogen in solar twins: constraints for the chemical evolution of the local disc
- The Planetary Nebula in the 500 Myr old Open Cluster M37
- The White Dwarfs of the Old, Solar Metallicity Open Star Cluster Messier 67: Properties and Progenitors
- The impact of the uncertainties in the 12C(α,γ)16O reaction rate on the evolution of low- to intermediate-mass stars
- A Census of Thermally-Pulsing AGB stars in the Andromeda Galaxy and a First Estimate of their Contribution to the Global Dust Budget
- White dwarf-open cluster associations based on Gaia DR2
- The Impact of the Third Dredge-up and Mass Loss in Shaping the Initial-Final Mass Relation of White Dwarfs
- Do All Low-Mass Stars Undergo Extra Mixing Processes?
- On the Contribution of Very Massive Stars to the Sulfur Abundance in Star-Forming Galaxies: the Role of PISN
- G 68-34: A Double-Lined M-Dwarf Eclipsing Binary in a Hierarchical Triple System
- Constraints on the Spindown of Fully-Convective M Dwarfs Using Wide Field Binaries