Published September 2011 | Version v1
Journal article

Charge radii of neon isotopes across the sd neutron shell

  • 1. Laboratory of Nuclear Reactions, Joint Institute of Nuclear Research, 141980 Dubna (Russian Federation)
  • 2. Institut fuer Physik, Universitaet Mainz, D-55099 Mainz (Germany)
  • 3. Physics Department, CERN, CH-1211 Geneva 23 (Switzerland)
  • 4. Max-Planck-Institut fuer Kernphysik, D-69117 Heidelberg (Germany)
  • 5. Laboratorium voor Vaste-Stoffysica en Magnetisme, K.U.Leuven, B-3001 Leuven (Belgium)
  • 6. Institut fuer Kernphysik, TU Darmstadt, D-64289 Darmstadt (Germany)

Description

We report on the changes in mean square charge radii of unstable neon nuclei relative to the stable 20Ne, based on the measurement of optical isotope shifts. The studies were carried out using collinear laser spectroscopy on a fast beam of neutral neon atoms. High sensitivity on short-lived isotopes was achieved thanks to nonoptical detection based on optical pumping and state-selective collisional ionization, which was complemented by an accurate determination of the beam kinetic energy. The new results provide information on the structural changes in the sequence of neon isotopes all across the neutron sd shell, ranging from the proton drip line nucleus and halo candidate 17Ne up to the neutron-rich 28Ne in the vicinity of the ''island of inversion.'' Within this range the charge radius is smallest for 24Ne with N=14 corresponding to the closure of the neutron d5/2 shell, while it increases toward both neutron shell closures, N=8 and N=20. The general trend of the charge radii correlates well with the deformation effects which are known to be large for several neon isotopes. In the neutron-deficient isotopes, structural changes arise from the onset of proton-halo formation for 17Ne, shell closure in 18Ne, and clustering effects in 20,21Ne. On the neutron-rich side the transition to the island of inversion plays an important role, with the radii in the upper part of the sd shell confirming the weakening of the N=20 magic number. The results add new information to the radii systematics of light nuclei where data are scarce because of the small contribution of nuclear-size effects to the isotope shifts which are dominated by the finite-mass effect.

Additional details

Identifiers

Publishing Information

Journal Title
Physical Review. C, Nuclear Physics
Journal Volume
84
Journal Issue
3
Journal Page Range
p. 034313-034313.13
ISSN
0556-2813
CODEN
PRVCAN

Optional Information

Notes
(c) 2011 American Institute of Physics