Neutron dominance in excited states of Mg and Be probed by proton and alpha inelastic scattering
arXiv:2004.04936 · doi:10.1103/PhysRevC.102.014607
Abstract
Isospin characters of nuclear excitations in Mg and Be are investigated via proton() and alpha() inelastic scattering. A structure model of antisymmetrized molecular dynamics (AMD) is applied to calculate the ground and excited states of Mg and Be. The calculation describes the isoscalar feature of the ground-band () excitation and predicts the neutron dominance of the side-band () excitation in Mg and Be. The and inelastic scattering off Mg and Be is calculated by microscopic coupled-channel (MCC) calculations with a -matrix folding approach by using the matter and transition densities of the target nuclei calculated with AMD. The calculation reasonably reproduces the observed , , and cross sections of Mg+ scattering at incident energies 24 and 40 MeV and of Mg+ scattering at 104 and 120 MeV. For Be+ and Be+ scattering, inelastic cross sections to the excited states in the ground-, side-, cluster-, and cluster-bands are investigated. The isospin characters of excitations are investigated via inelastic scattering processes by comparison of the production rates in the Be+, Be+, and C+ reactions. The result predicts that the state is selectively produced by the Be+ reaction because of the neutron dominance in the excitation as in the case of the Mg+ scattering to the state, whereas its production is significantly suppressed in the C+ reaction.
19 pages, 12 figures
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