Evolution of single-particle structure of silicon isotopes
arXiv:1712.09954 · doi:10.1140/epja/i2018-12449-x
Abstract
New data on proton and neutron single-particle energies of Si isotopes with neutron number from 12 to 28 as well as occupation probabilities of single particle states of stable isotopes Si near the Fermi energy were obtained by the joint evaluation of the stripping and pick-up reaction data and excited state decay schemes of neighboring nuclei. The evaluated data indicate following features of single-particle structure evolution: persistence of subshell closure with increase, the new magicity of the number , and the conservation of the magic properties of the number in Si isotopic chain. The features were described by the dispersive optical model. The calculation also predicts the weakening of shell closure and demonstrates evolution of bubble-like structure of the proton density distributions in neutron-rich Si isotopes.
14 pages, 12 figures, accepted for publication in the European Physical Journal A - "Hadrons and Nuclei"
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