The effects of stellar winds of fast-rotating massive stars in the earliest phases of the chemical enrichment of the Galaxy
arXiv:1004.0088 · doi:10.1051/0004-6361/201014086
Abstract
We use the growing data sets of very-metal-poor stars to study the impact of stellar winds of fast rotating massive stars on the chemical enrichment of the early Galaxy. We use an inhomogeneous chemical evolution model for the Galactic halo to predict both the mean trend and scatter of C/O and N/O. In one set of models, we assume that massive stars enrich the interstellar medium during both the stellar wind and supernovae phases. In the second set, we consider that in the earliest phases (Z <10^-8), stars with masses above 40 Msun only enrich the interstellar medium via stellar winds, collapsing directly into black holes. We predict a larger scatter in the C/O and N/O ratios at low metallicities when allowing the more massive fast-rotating stars to contribute to the chemical enrichment only via stellar winds. The latter assumption, combined with the stochasticity in the star formation process in the primordial Galactic halo can explain the wide spread observed in the N/O and C/O ratios in normal very-metal-poor stars. For chemical elements with stellar yields that depend strongly on initial mass (and rotation) such as C, N, and neutron capture elements, within the range of massive stars, a large scatter is expected once the stochastic enrichment of the early interstellar medium is taken into account. We also find that stellar winds of fast rotators mixed with interstellar medium gas are not enough to explain the large CNO enhancements found in most of the carbon-enhanced very-metal-poor stars. In particular, this is the case of the most metal-poor star known to date, HE 1327-2326, for which our models predict lower N enhancements than observed when assuming a mixture of stellar winds and interstellar medium. We suggest that these carbon-enhanced very metal-poor stars were formed from almost pure stellar wind material, without dilution with the pristine interstellar medium.
10 pages, 7 figures, accepted for publication in A&A
References in corpus (11)
- Nucleosynthetic signatures of the first stars
- First stars VI - Abundances of C, N, O, Li, and mixing in extremely metal-poor giants. Galactic evolution of the light elements
- Very low metallicity massive star models: Pre-SN evolution and primary nitrogen production
- HE 0557-4840 - Ultra-Metal-Poor and Carbon-Rich
- Effects of rotation on the evolution of primordial stars
- Bright Metal-Poor Stars from the Hamburg/ESO Survey. I. Selection and Follow-up Observations from 329 Fields
- First stars IX -Mixing in extremely metal-poor giants. Variation of the 12C/13C, [Na/Mg] and [Al/Mg] ratios
- HE 1327-2326, an unevolved star with [Fe/H]<-5.0. II. New 3D-1D corrected abundances from a VLT/UVES spectrum
- The chemical compositions of the extreme halo stars HE0107-5240 and HE1327-2326 inferred from 3D hydrodynamical model atmospheres
- A new imprint of fast rotators: low 12C/13C ratios in extremely metal-poor halo stars
- An inhomogeneous model for the Galactic halo: a possible explanation for the spread observed in s- and r-process elements
Cited by in corpus (26)
- Pre-galactic metal enrichment - The chemical signatures of the first stars
- The Most Metal-Poor Stars. III. The Metallicity Distribution Function and CEMP Fraction
- The role of neutron star mergers in the chemical evolution of the Galactic halo
- The s-process in the Galactic halo: the fifth signature of spinstars in the early Universe?
- Explaining the Ba, Y, Sr, and Eu abundance scatter in metal-poor halo stars: constraints to the r-process
- The first stars: CEMP--no stars and signatures of spinstars
- Abundances of carbon-enhanced metal-poor stars as constraints on their formation
- 2D chemical evolution model: the impact of galactic disc asymmetries on azimuthal chemical abundance variations
- Searches for Metal-Poor Stars from the Hamburg/ESO Survey using the CH G-band
- Origin of Cosmic Chemical Abundances
- Constraints on stellar rotation from the evolution of Sr and Ba in the Galactic halo
- [O/Fe] Estimates for Carbon-Enhanced Metal-Poor Stars from Near-IR Spectroscopy
- The Chemical Evolution of Phosphorus
- Modelling the chemical evolution of the Galaxy halo
- Manganese spread in Ursa Minor as a proof of sub-classes of type Ia supernovae
- High N/O ratio at high redshift as a result of a strong burst of star formation and differential galactic winds
- 2D chemical evolution models II. Effects of multiple spiral arm patterns on O, Eu, Fe and Ba abundance gradients
- The Origin and Evolution of the Mass-Metallicity Relation using GalICS
- Explaining the ratio in the Galactic halo: the contribution from shell mergers in primordial massive stars
- Does the chemical signature of TYC 8442-1036-1 originate from a rotating massive star that died in a faint explosion?
- The oldest stars of the bulge: new information on the ancient Galaxy
- The neutron-capture and alpha-elements abundance ratios scatter in old stellar populations. Cosmological simulations of the stellar halo
- The chemical DNA of the Magellanic Clouds V. R-process dominates neutron capture elements production in the oldest SMC stars
- First Stars. II. Evolution with mass loss
- UVES analysis of red giants in the bulge globular cluster NGC 6522
- Discovery of O stars in the tidal Magellanic Bridge: Stellar parameters, abundances, and feedback of the nearest metal-poor massive stars and their implication for the Magellanic System ecology