arXiv:2608.10943·v1·Nuclear Theory
Laser spectroscopy illuminates the shell closure
Tim E. Lellinger🇩🇪 · Liss V. Rodriguez🇩🇪 · Patrick Muller🇩🇪 · Osama Ahmad🇧🇪 · Mark L. Bissell🇨🇭 · Klaus Blaum🇩🇪 · Emily Burbach🇩🇪 · Bradley Cheal🇬🇧 · Till Fabritz🇩🇪 · Ronald F. Garcia Ruiz🇺🇸 · Matthias Heinz🇺🇸 · Jack Hughes🇬🇧
Abstract
Atomic nuclei are strongly correlated quantum many-body systems, and how their shell structure evolves with increasing neutron excess remains a central open question in nuclear physics. Calcium isotopes are an ideal testing ground: alongside the traditional magic numbers , new shell closures have been proposed at (). While the charge radius rises rapidly towards , further moments and radii in the isotopic chain have remained inaccessible due to the low production yield of a few ions per second. Here we apply a highly sensitive collinear laser spectroscopy technique, which reveals a strikingly simple behaviour: adding one neutron to yields a pure single-particle magnetic dipole moment in , while the charge-radius slope towards exceeds that towards . This provides strong evidence for a robust shell closure and stringently constrains nuclear structure models.