Low-energy proton capture reactions in the mass region 55-60
arXiv:1502.00222 · doi:10.1103/PhysRevC.91.025804
Abstract
Low energy proton capture reactions in the mass 55-60 region are studied in a microscopic optical model. Nuclear density profile is calculated using the relativistic mean field theory. The DDM3Y interaction is folded with the theoretical density to obtain the proton-nucleus optical potential. A definite set of normalization parameters has been obtained for the concerned mass region by comparing with all available experimental data in this mass region. These parameters have been used to obtain proton capture rates for astrophysically important reactions in this mass region.
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Cited by in corpus (7)
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- Neutron Capture Reactions near N=82 Shell-Closure
- Neutron capture reactions relevant to s-process and p-process in the domain of the shell closure
- Microscopic Study of (p,) Reactions in Mass Region A=110-125
- Novel feature of doubly bubble nuclei in 50Z(N)82 region along with magicity and weakly bound structure
- Microscopic folding model analysis of the radiative reactions near the shell-closure and the weak s-process
- Radiative proton capture cross sections in the mass range