4.6 Article

Population synthesis of binary carbon-enhanced metal-poor stars

期刊

ASTRONOMY & ASTROPHYSICS
卷 508, 期 3, 页码 1359-U332

出版社

EDP SCIENCES S A
DOI: 10.1051/0004-6361/200912827

关键词

stars: carbon; binaries: close; stars: chemically peculiar; Galaxy: halo; Galaxy: stellar content; nuclear reactions, nucleosynthesis, abundances

资金

  1. Marie Curie-Intra European Fellowship
  2. NWO [614.000.303]
  3. NSERC
  4. Australian Research Council [DP0879472]
  5. Churchill College for his Junior Research Fellowship
  6. Australian Research Council [DP0879472] Funding Source: Australian Research Council

向作者/读者索取更多资源

The carbon-enhanced metal-poor (CEMP) stars constitute approximately one fifth of the metal-poor ([Fe/H] less than or similar to -2) population but their origin is not well understood. The most widely accepted formation scenario, at least for the majority of CEMP stars which are also enriched in s-process elements, invokes mass-transfer of carbon-rich material from a thermally-pulsing asymptotic giant branch (TPAGB) primary star to a less massive main-sequence companion which is seen today. Recent studies explore the possibility that an initial mass function biased toward intermediate-mass stars is required to reproduce the observed CEMP fraction in stars with metallicity [Fe/H] < -2.5. These models also implicitly predict a large number of nitrogen-enhanced metal-poor (NEMP) stars which is not seen. In this paper we investigate whether the observed CEMP and NEMP to extremely metal-poor (EMP) ratios can be explained without invoking a change in the initial mass function. We construct binary-star populations in an attempt to reproduce the observed number and chemical abundance patterns of CEMP stars at a metallicity [Fe/H] similar to -2.3. Our binary-population models include synthetic nucleosynthesis in TPAGB stars and account for mass transfer and other forms of binary interaction. This approach allows us to explore uncertainties in the CEMP-star formation scenario by parameterization of uncertain input physics. In particular, we consider the uncertainty in the physics of third dredge up in the TPAGB primary, binary mass transfer and mixing in the secondary star. We confirm earlier findings that with current detailed TPAGB models, in which third dredge up is limited to stars more massive than about 1.25 M(circle dot), the large observed CEMP fraction cannot be accounted for. We find that efficient third dredge up in low-mass (less than 1.25 M(circle dot)), low-metallicity stars may offer at least a partial explanation for the large observed CEMP fraction while remaining consistent with the small observed NEMP fraction.

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