Impacts of hexadecapole correlations in actinide nuclei
L. Lotina, K. Nomura, R. Rodr\'ıguez-Guzmán, L. M. Robledo
Abstract
The impact of hexadecapole correlations on the low-energy spectroscopic properties of Th, U, and Pu nuclei, within the mass range 232 A 240, is studied systematically using the mapped sdg-IBM model. Fermionic input is obtained via the quadrupole-hexadecapole constrained Hartree-Fock-Bogoliubov approximation, based on the parametrization D1S of the Gogny energy density functional. The sdg-IBM Hamiltonian parameters are determined by mapping the quadrupole-hexadecapole fermionic mean-field potential energy surfaces onto the corresponding bosonic surfaces. The low-energy spectra and transition strengths, obtained via the diagonalization of the sdg-IBM Hamiltonian, compare well with the available experimental data. It is shown that the effects of hexadecapole collectivity can be observed in high-spin yrast states with spins Jπ ≥slant 10+. The mapped sdg-IBM improves the excitation energies of those states, as compared with the simpler sd-IBM model. The sdg-IBM also improves the description of the E2 transition strengths between high-spin yrast states and predicts strong E4 transitions from nonyrast 4+ states to the 0+ ground state.
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