Radii in the $sd$ shell and the $s_{1/2}$ "halo" orbit: A game changer
Abstract
Proton radii of nuclei in the shell depart appreciably from the asymptotic law, . The departure exhibits systematic trends fairly well described by a single phenomenological term in the Duflo-Zuker formulation, which also happens to explain the sudden increase in slope in the isotope shifts of several chains at neutron number . It was recently shown that this term is associated with the abnormally large size of the and orbits in the and shells respectively. Further to explore the problem, we propose to calculate microscopically radii in the former. Since the (square) radius is basically a one body operator, its evolution is dictated by single particle occupancies determined by shell model calculations. Assuming that the departure from the asymptotic form is entirely due to the orbit, the expectation value is determined by demanding that its evolution be such as to describe well nuclear radii. It does, for an orbit that remains very large (about 1.6 fm bigger than its counterparts) up to then drops abruptly but remains some 0.6 fm larger than the orbits. An unexpected behavior bound to challenge our understanding of shell formation.
Keywords
Cite
@article{arxiv.1606.03345,
title = {Radii in the $sd$ shell and the $s_{1/2}$ "halo" orbit: A game changer},
author = {J. Bonnard and A. P. Zuker},
journal= {arXiv preprint arXiv:1606.03345},
year = {2018}
}
Comments
4 pages 6(7) figures