Charge radii in covariant density functional theory: a global view
U. C. Perera, A.V. Afanasjev, P. Ring

TL;DR
This paper presents a comprehensive global analysis of differential charge radii in nuclei using covariant density functional theory, highlighting the influence of single-particle structure and pairing effects on charge radii evolution across neutron shell closures.
Contribution
First systematic global study of differential charge radii within CDFT comparing theoretical results with experimental data across multiple shell closures.
Findings
Model describes charge radii well above N=50 and N=126 shell closures.
Single-particle structure significantly affects charge radii near shell closures.
Fragmentation of single-particle states and particle-vibration coupling influence odd-even staggering.
Abstract
A systematic global investigation of differential charge radii has been performed within the CDFT framework for the first time. Theoretical results obtained with conventional covariant energy density functionals and separable pairing interaction are compared with experimental differential charge radii in the regions of the nuclear chart in which available experimental data crosses neutron shell closures at N = 28, 50, 82 and 126. The analysis of absolute differential radii of different isotopic chains and their relative properties indicate clearly that such properties are reasonably well described in model calculations in the cases when the mean-field approximation is justified. However, while the observed clusterization of differential charge radii of different isotopic chains is well described above the N=50 and N=126 shell closures, it is more difficult to reproduce it above the N=28…
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Taxonomy
TopicsNuclear physics research studies · Nuclear reactor physics and engineering · High-Energy Particle Collisions Research
