English

Production of carbon-rich presolar grains from massive stars

Solar and Stellar Astrophysics 2015-06-15 v1

Abstract

About a year after core collapse supernova, dust starts to condense in the ejecta. In meteorites, a fraction of C-rich presolar grains (e.g., silicon carbide (SiC) grains of Type-X and low density graphites) are identified as relics of these events, according to the anomalous isotopic abundances. Several features of these abundances remain unexplained and challenge the understanding of core-collapse supernovae explosions and nucleosynthesis. We show, for the first time, that most of the measured C-rich grain abundances can be accounted for in the C-rich material from explosive He burning in core-collapse supernovae with high shock velocities and consequent high temperatures. The inefficiency of the 12^{12}C(α\alpha,γ\gamma)16^{16}O reaction relative to the rest of the α\alpha-capture chain at T>3.5×108KT > 3.5\times10^8 \mathrm{K} causes the deepest He-shell material to be carbon rich and silicon rich, and depleted in oxygen. The isotopic ratio predictions in part of this material, defined here as the C/Si zone, are in agreement with the grain data. The high-temperature explosive conditions that our models reach at the bottom of the He shell, can also be representative of the nucleosynthesis in hypernovae or in the high-temperature tail of a distribution of conditions in asymmetric supernovae. Finally, our predictions are consistent with the observation of large 44^{44}Ca/40^{40}Ca observed in the grains. This is due to the production of 44^{44}Ti together with 40^{40}Ca in the C/Si zone, and/or to the strong depletion of 40^{40}Ca by neutron captures.

Keywords

Cite

@article{arxiv.1303.3374,
  title  = {Production of carbon-rich presolar grains from massive stars},
  author = {M. Pignatari and M. Wiescher and F. X. Timmes and R. J. de Boer and F. -K. Thielemann and C. Fryer and A. Heger and F. Herwig and R. Hirschi},
  journal= {arXiv preprint arXiv:1303.3374},
  year   = {2015}
}

Comments

13 pages, 4 figures, The Astrophysical Journal Letters, accepted