Suddenly shortened half-lives beyond Ni: magic number and high-energy non-unique first-forbidden transitions
arXiv:1903.03310 · doi:10.1103/PhysRevC.100.024316
Abstract
-decay rates play a decisive role in understanding the nucleosynthesis of heavy elements and are governed by microscopic nuclear-structure information. A sudden shortening of the half-lives of Ni isotopes beyond was observed at the RIKEN-RIBF. This is considered due to the persistence of the neutron magic number in the very neutron-rich Ni isotopes. By systematically studying the -decay rates and strength distributions in the neutron-rich Ni isotopes around , I try to understand the microscopic mechanism for the observed sudden shortening of the half-lives. The -strength distributions in the neutron-rich nuclei are described in the framework of nuclear density-functional theory. I employ the Skyrme energy-density functionals (EDF) in the Hartree-Fock-Bogoliubov calculation for the ground states and in the proton-neutron Quasiparticle Random-Phase Approximation (pnQRPA) for the transitions. Not only the allowed but the first-forbidden (FF) transitions are considered. The experimentally observed sudden shortening of the half-lives beyond is reproduced well by the calculations employing the Skyrme SkM* and SLy4 functionals. The sudden shortening of the half-lives is due to the shell gap at and cooperatively with the high-energy transitions to the low-lying and states in the daughter nuclei. The onset of FF transitions pointed out around and 126 is preserved in the lower-mass nuclei around . This study suggests that needed is a microscopic calculation where the shell structure in neutron-rich nuclei and its associated effects on the FF transitions are selfconsistenly taken into account for predicting -decay rates of exotic nuclei in unknown region.
8 pages, 7 figures and 1 table
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