Evolution and Nucleosynthesis of Metal-Free Massive Stars
arXiv:astro-ph/9912248 · doi:10.1007/10719504_27
Abstract
We calculate presupernova evolutions and supernova explosions of massive stars (M=13-25 Mo) for various metallicities. We find the following characteristic abundance patterns of nucleosynthesis in the metal-free (Pop III) stars. (1) The alpha-nuclei (from C to Zn) are more efficiently produced than other isotopes, and the abundance pattern of alpha-nuclei can be similar to the solar abundance. In particular, near solar ratios of alpha elements/Fe might be a signature of Pop III which could produce a large amount of Fe. (2) The abundance ratios of odd Z to even Z elements such as Na/Mg and Al/Mg become smaller for lower metallicity. However, these ratios almost saturate below Z <~ 10^{-5}, and [Na, Al/Mg] ~ - 1 for Pop III and low metal Pop II nucleosynthesis. This result is consistent with abundance pattern of metal poor stars, in which these ratios also saturate around -1. We suggest that these stars with the lowest [Na/Mg] or [Al/Mg] may contain the abundance pattern of Pop III nucleosynthesis. (3) Metal poor stars show interesting trends in the ratios of [Cr, Mn, Co/Fe]. We discuss that these trends are not explained by the differences in metallicity, but by the relative thickness between the complete and the incomplete Si burning layers. Large [Co/Fe] and small [Cr, Mn/Fe] values found in the observations are explained if mass cut is deep or if matter is ejected from complete Si burning layer in a form of a jet or bullets. (4) We also find that primary ^{14}N production occurs in the massive Pop III stars, because these stars have radiative H-rich envelopes so that the convective layer in the He-shell burning region can reach the H-rich region.
19 pages. To appear in the proceedings of the MPA/ESO conference ``The First Stars'' (August 4-7, 1999, Garching) ed. A. Weiss etal. (Springer)
Cited by in corpus (24)
- The Nucleosynthetic Signature of Population III
- Galactic chemical evolution: Carbon through Zinc
- Stellar evolution with rotation VIII: Models at Z = 10^{-5} and CNO yields for early galactic evolution
- Nucleosynthesis of Zinc and Iron-Peak Elements in Pop III Type II Supernovae : Comparison with abundances of Very Metal-Poor Halo Stars
- Variations in the Abundance Pattern of Extremely Metal-poor Stars and Nucleosynthesis in Population III Supernovae
- Extremely Metal-Poor Stars. VIII. High-Resolution, High-Signal-To-Noise Analysis of Five Stars with [Fe/H] < -3.5
- How much 56Ni can be produced in Core-Collapse Supernovae? : Evolution and Explosions of 30 - 100 Msun Stars
- The History of the Comic Supernova Rate Derived from the Evolution of the Host Galaxies
- Chemical abundances in LMC stellar populations I. The Inner disk sample Based on observations collected at the VLT UT2 telescope
- The origin of primary nitrogen in galaxies
- The Initial mass function of the first stars inferred from extremely metal-poor stars
- Early stages of Nitrogen enrichment in galaxies: Clues from measurements in damped Lyman alpha systems
- The UCSD HIRES/KECK I Damped Lya Abundance Database: IV. Probing Galactic Enrichment Histories with Nitrogen
- Sodium abundances in nearby disk stars
- Statistical equilibrium of silicon in the atmospheres of metal-poor stars
- Explosive Nucleosynthesis of Weak r-Process Elements in Extremely Metal-Poor Core-Collapse Supernovae
- Peculiar Chemical Abundances in the Starburst Galaxy M82 and Hypernova Nucleosynthesis
- The First Detection of Cobalt in a Damped Lyman Alpha System
- A Detailed Observation of a LMC Supernova Remnant DEM L241 with XMM-Newton
- Chemical composition of two bright extremely metal-poor stars from the SDSS MARVELS pre-survey
- Chemical Evolution of Odd Elements in an Inhomogeneous Early Galaxy
- A new model for the origin of very metal poor stars and their chemical composition
- First Stars. I. Evolution without mass loss
- Revisiting the Perseus Cluster II: Metallicity-Dependence of Massive Stars and Chemical Enrichment History