Charge radii of exotic neon and magnesium isotopes
Abstract
We compute the charge radii of even-mass neon and magnesium isotopes from neutron number N = 8 to the dripline. Our calculations are based on nucleon-nucleon and three-nucleon potentials from chiral effective field theory that include delta isobars. These potentials yield an accurate saturation point and symmetry energy of nuclear matter. We use the coupled-cluster method and start from an axially symmetric reference state. Binding energies and two-neutron separation energies largely agree with data and the dripline in neon is accurate. The computed charge radii have an estimated uncertainty of about 2-3% and are accurate for many isotopes where data exist. Finer details such as isotope shifts, however, are not accurately reproduced. Chiral potentials correctly yield the subshell closure at N = 14 and also a decrease in charge radii at N = 8 (observed in neon and predicted for magnesium). They yield a continued increase of charge radii as neutrons are added beyond N = 14 yet underestimate the large increase at N = 20 in magnesium.
Keywords
Cite
@article{arxiv.2007.06684,
title = {Charge radii of exotic neon and magnesium isotopes},
author = {S. J. Novario and G. Hagen and G. R. Jansen and T. Papenbrock},
journal= {arXiv preprint arXiv:2007.06684},
year = {2020}
}
Comments
9 pages, 8 figures