Shell structure of potassium isotopes deduced from their magnetic moments
arXiv:1410.0895 · doi:10.1103/PhysRevC.90.034321
Abstract
\item[Background] Ground-state spins and magnetic moments are sensitive to the nuclear wave function, thus they are powerful probes to study the nuclear structure of isotopes far from stability. \item[Purpose] Extend our knowledge about the evolution of the and states for K isotopes beyond the shell gap. \item[Method] High-resolution collinear laser spectroscopy on bunched atomic beams. \item[Results] From measured hyperfine structure spectra of K isotopes, nuclear spins and magnetic moments of the ground states were obtained for isotopes from up to . In order to draw conclusions about the composition of the wave functions and the occupation of the levels, the experimental data were compared to shell-model calculations using SDPF-NR and SDPF-U effective interactions. In addition, a detailed discussion about the evolution of the gap between proton and in the shell model and {\it{ab initio}} framework is also presented. \item[Conclusions] The dominant component of the wave function for the odd- isotopes up to K is a hole. For K, the main component originates from a hole configuration and it inverts back to the in K. For all even- isotopes, the dominant configuration arises from a hole coupled to a neutron in the or orbitals. Only for K, a significant amount of mixing with is observed leading to a ground state. For K, the ground-state spin-parity is with leading configuration .
12 pages, 10 figures, 7 tables
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