Are Faint Supernovae Responsible for Carbon-Enhanced Metal-Poor Stars?
arXiv:2001.01420 · doi:10.3847/1538-4357/ab67be
Abstract
Mixing and fallback models in faint supernova models are supposed to reproduce the abundance patterns of observed carbon-enhanced metal-poor (CEMP) stars in the Galactic halo. A fine tuning of the model parameters for individual stars is required to reproduce the observed ratios of carbon to iron. We focus on extremely metal-poor stars formed out of the ejecta from the mixing and fallback models using a chemical evolution model. Our chemical evolution models take into account the contribution of individual stars to chemical enrichment in host halos together with their evolution in the context of the hierarchical clustering. Parametrized models of mixing and fallback models for Pop. III faint supernovae are implemented in the chemical evolution models with merger trees to reproduce the observed CEMP stars. A variety of choices for model parameters on star formation and metal-pollution by faint supernovae is unable to reproduce the observed stars with [Fe/H] < -4 and [C/H] > -2, which are the majority of CEMP stars among the lowest metallicity stars. Only possible solution is to form stars from small ejecta mass, which produces an inconsistent metallicity distribution function. We conclude that not all the CEMP stars are explicable by the mixing and fallback models. We also tested the contribution of binary mass transfers from AGB stars that are also supposed to reproduce the abundances of known CEMP stars. This model reasonably reproduces the distribution of carbon and iron abundances simultaneously only if we assume that long-period binaries are favored at [Fe/H] < -3.5.
17 pages, 19 figures, accepted for publication in the Astrophysical Journal
References in corpus (14)
- Galactic chemical evolution: Carbon through Zinc
- Carbon Enhanced Metal-Poor Stars. I. Chemical Compositions of 26 Stars
- Generating Dark Matter Halo Merger Trees
- Population III star formation in a Lambda CDM universe, II: Effects of a photodissociating background
- Observational Constraints on First-Star Nucleosynthesis. I. Evidence for Multiple Progenitors of CEMP-no Stars
- Binarity in Carbon-Enhanced Metal-Poor stars
- Carbon-Enhanced Metal-Poor Stars: Relics from the Dark Ages
- Nucleosynthesis in a Primordial Supernova: Carbon and Oxygen Abundances in SMSS J031300.36-670839.31
- The first stars: CEMP--no stars and signatures of spinstars
- Contribution of Neutron Star Mergers to the R-process Chemical Evolution in the Hierarchical Galaxy Formation
- Classification of extremely metal-poor stars: absent region in A(C)-[Fe/H] plane and the role of dust cooling
- Primordial Stellar Feedback and the Origin of Hyper Metal-Poor Stars
- Following The Cosmic Evolution Of Pristine Gas I: Implications For Milky Way Halo Stars
- The s-Process Nucleosynthesis in Extremely Metal-Poor Stars as the Generating Mechanism of Carbon Enhanced Metal-Poor Stars
Cited by in corpus (10)
- The evolution of CNO elements in galaxies
- The role of faint population III supernovae in forming CEMP stars in ultra-faint dwarf galaxies
- A Minimum Dilution Scenario for Supernovae and Consequences for Extremely Metal-Poor Stars
- Implications of inhomogeneous metal mixing for stellar archaeology
- The energy distribution of the first supernovae
- Seeding the second star -- II. CEMP star formation enriched from faint supernovae
- Understanding the origin of CEMP-no stars through ultra-faint dwarfs
- The Pristine survey XIV: chemical analysis of two ultra-metal-poor stars
- Does the structure of Pop III supernova ejecta affect the elemental abundance of extremely metal-poor stars?
- A comparative study on three modes of s-process nucleosynthesis in extremely metal-poor AGB stars