Rotational mixing in carbon-enhanced metal-poor stars with s-process enrichment
arXiv:1707.09434 · doi:10.1051/0004-6361/201731272
Abstract
Carbon-enhanced metal-poor stars with s-process enrichment (CEMP-s) are believed to be the products of mass transfer from an AGB companion, which has long since become a white dwarf. The surface abundances of CEMP-s stars are thus commonly assumed to reflect the nucleosynthesis output of the first AGB stars. We have previously shown that, for this to be the case, some physical mechanism must counter atomic diffusion in these nearly fully radiative stars, which otherwise leads to surface abundance anomalies clearly inconsistent with observations. Here we take into account angular momentum accretion by these stars. We compute in detail the evolution of typical CEMP-s stars from the ZAMS, through the mass accretion, and up the RGB for a wide range of specific angular momentum of the accreted material, corresponding to rotation velocities between about 0.3 and 300 km/s. We find that only for specific angular momentum above 1e+17 cm2/s (rotation velocities above 20 km/s) angular momentum accretion directly causes chemical dilution of the accreted material. This could nevertheless be relevant to CEMP-s stars, which are observed to rotate more slowly, if they undergo continuous angular momentum loss akin to solar-like stars. In models with rotation velocities characteristic of CEMP-s stars, rotational mixing primarily serves to inhibit atomic diffusion, such that the maximal surface abundance variations (with respect to the composition of the accreted material) prior to first dredge-up remain within about 0.4 dex without thermohaline mixing or about 0.5-1.5 dex with thermohaline mixing. Even in models with the lowest rotation velocities (under a km/s), rotational mixing is able to severely inhibit atomic diffusion, compared to non-rotating models. We thus conclude that it offers a natural solution to the problem posed by atomic diffusion and cannot be neglected in models of CEMP-s stars.
16 pages, 18 figures. Accepted for publication in A&A
References in corpus (15)
- Carbon-Enhanced Metal-Poor Star Frequencies in the Galaxy: Corrections for the Effect of Evolutionary Status on Carbon Abundances
- Galactic Chemical Evolution and solar s-process abundances: dependence on the 13C-pocket structure
- A spin-down clock for cool stars from observations of a 2.5-billion-year-old cluster
- Deep Mixing of He-3: Reconciling Big Bang and Stellar Nucleosynthesis
- The Frequency of Carbon-Enhanced Metal-Poor Stars in the Galaxy from the HERES sample
- Binarity in Carbon-Enhanced Metal-Poor stars
- White dwarf spins from low mass stellar evolution models
- Angular Momentum Transport via Internal Gravity Waves in Evolving Stars
- Thermohaline mixing and gravitational settling in carbon-enhanced metal-poor stars
- Lithium abundances in CEMP stars
- Carbon-enhanced metal-poor stars: a window on AGB nucleosynthesis and binary evolution. I. Detailed analysis of 15 binary stars with known orbital periods
- 3He-Driven Mixing in Low-Mass Red Giants: Convective Instability in Radiative and Adiabatic Limits
- The Impact of Carbon Enhancement on Extra Mixing in Metal-Poor Stars
- An Overview of the Rotational Behavior of Metal--Poor Stars
- Double-diffusive mixing in stellar interiors in the presence of horizontal gradients
Cited by in corpus (8)
- Are some CEMP-s stars the daughters of spinstars?
- s-Processing in AGB Stars Revisited. III. Neutron captures from MHD mixing at different metallicities and observational constraints
- Barium and related stars, and their white-dwarf companions. III. The masses of the white dwarfs
- Binary evolution along the Red Giant Branch with BINSTAR: The barium star perspective
- Unusual neutron-capture nucleosynthesis in a carbon-rich Galactic bulge star
- How much mass and angular momentum can the progenitors of carbon-enriched stars accrete?
- Matter accretion in metal-poor stars down to extremely metal-poor stars and the lithium problem
- Production of n-rich nuclei in red giant stars