arXiv:1911.09020·v3·Nuclear Theory
A dispersive optical model analysis of Pb generating a neutron-skin prediction beyond the mean field
M. C. Atkinson · M. H. Mahzoon · M. A. Keim · B. A. Bordelon · C. D. Pruitt · R. J. Charity · W. H. Dickhoff
Abstract
A nonlocal dispersive-optical-model analysis has been carried out for neutrons and protons in Pb. Elastic-scattering angular distributions, total and reaction cross sections, single-particle energies, the neutron and proton numbers, the charge distribution, and the binding energy have been fitted to extract the neutron and proton self-energies both above and below the Fermi energy. From the single-particle propagator derived from these self-energies, we have determined the charge and matter distributions in Pb. The predicted spectroscopic factors are consistent with results from the reaction and inelastic-electron-scattering data to very high spin states. Sensible results for the high-momentum content of neutrons and protons are obtained with protons appearing more correlated, in agreement with experiment and \textit{ab initio} calculations of asymmetric matter. A neutron skin of fm is deduced. An analysis of several nuclei leads to the conclusion that finite-size effects play a non-negligible role in the formation of the neutron skin in finite nuclei.
Comments: 15 pages, 14 figures. arXiv admin note: text overlap with arXiv:1808.08895