Nuclear binding energies: Global collective structure and local shell-model correlations
Abstract
Nuclear binding energies and two-neutron separation energies are analyzed starting from the liquid-drop model and the nuclear shell model in order to describe the global trends of the above observables. We subsequently concentrate on the Interacting Boson Model (IBM) and discuss a new method in order to provide a consistent description of both, ground-state and excited-state properties. We address the artefacts that appear when crossing mid-shell using the IBM formulation and perform detailed numerical calculations for nuclei situated in the 50-82 shell. We also concentrate on local deviations from the above global trends in binding energy and two-neutron separation energies that appear in the neutron-deficient Pb region. We address possible effects on the binding energy, caused by mixing of low-lying intruder states into the ground state, using configuration mixing in the IBM framework. We also study ground-state properties using a deformed mean-field approach. Detailed comparisons with recent experimental data in the Pb region are amply discussed.
Cite
@article{arxiv.nucl-th/0103070,
title = {Nuclear binding energies: Global collective structure and local shell-model correlations},
author = {R. Fossion and C. De Coster and J. E. Garcia-Ramos and T. Werner and K. Heyde},
journal= {arXiv preprint arXiv:nucl-th/0103070},
year = {2009}
}
Comments
69 pages, TeX (ReVTeX). 23 eps figures. 1 table. Modified version. Accepted in Nucl. Phys. A