Nucleosynthesis in Black-Hole-Forming Supernovae and Extremely Metal-Poor Stars

10Citations
Citations of this article
6Readers
Mendeley users who have this article in their library.

Abstract

Stars more massive than ∼ 20 - 25 M⊙ form a black hole at the end of their evolution. Stars with non-rotating black holes are likely to collapse "quietly" ejecting a small amount of heavy elements (Faint supernovae). In contrast, stars with rotating black holes are likely to give rise to very energetic supernovae (Hypernovae). We present distinct nucleosynthesis features of these two types of "black-hole-forming" supernovae. Nucleosynthesis in Hypernovae are characterized by larger abundance ratios (Zn,Co,V,Ti)/Fe and smaller (Mn,Cr)/Fe, which can explain the observed trend of these ratios in extremely metal-poor stars. Nucleosynthesis in Faint supernovae is characterized by a large amount of fall-back. We show that the abundance pattern of the recently discovered most Fe deficient star, HE0107-5240, and other extremely metal-poor carbon-rich stars are in good accord with those of black-hole-forming supernovae, but not pair-instability supernovae. This suggests that black-hole-forming supernovae made important contributions to the early Galactic (and cosmic) chemical evolution. Finally we discuss the nature of First (Pop III) Stars.

Cite

CITATION STYLE

APA

Nomoto, K., Maeda, K., Umeda, H., Ohkubo, T., Deng, J., & Mazzali, P. (2003). Nucleosynthesis in Black-Hole-Forming Supernovae and Extremely Metal-Poor Stars. In Progress of Theoretical Physics Supplement (Vol. 151, pp. 44–53). Yukawa Institute for Theoretical Physics. https://doi.org/10.1143/PTPS.151.44

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free