Relation between the 16O(alpha,gamma)20Ne reaction and its reverse 20Ne(gamma,alpha)16O reaction in stars and in the laboratory
arXiv:astro-ph/0506099 · doi:10.1140/epja/i2006-08-010-1
Abstract
The astrophysical reaction rates of the 16O(a,g)20Ne capture reaction and its inverse 20Ne(g,a)16O photodisintegration reaction are given by the sum of several narrow resonances and a small direct capture contribution at low temperatures. Although the thermal population of low lying excited states in 16O and 20Ne is extremely small, the first excited state in 20Ne plays a non-negligible role for the photodisintegration rate. Consequences for experiments with so-called quasi-thermal photon energy distributions are discussed.
4 pages, 2 figures, Proceedings Nuclear Physics in Astrophysics-II, Debrecen, Hungary, 2005
References in corpus (3)
Cited by in corpus (7)
- Frontiers in Nuclear Astrophysics
- Elastic alpha scattering experiments and the alpha-nucleus optical potential at low energies
- Survival of Nature's Rarest Isotope 180Ta under Stellar Conditions
- Photon-induced Nucleosynthesis: Current Problems and Experimental Approaches
- Properties of the 5- state at 839 keV in 176Lu and the s-process branching at A = 176
- -cluster states in Cr from double-folding potentials
- Modification of nuclear transitions in stellar plasma by electronic processes: K-isomers in 176Lu and 180Ta under s-process conditions