English

Nuclear charge radii of germanium isotopes around $N$ = 40

Nuclear Experiment 2024-10-29 v1 Nuclear Theory

Abstract

Collinear laser spectroscopy measurements were performed on 6874^{68-74}Ge isotopes (Z=32Z = 32) at ISOLDE-CERN, by probing the 4s24p23 ⁣P14s24p5s3 ⁣P1o4s^2 4p^2 \, ^3\!P_1 \rightarrow 4s^2 4p 5s \, ^3\!P_1^o atomic transition (269~nm) of germanium. Nuclear charge radii are determined via the measured isotope shifts, revealing a larger local variation than the neighboring isotopic chains. Nuclear density functional theory with the Fayans functionals Fy(Δr\Delta r,HFB) and Fy(IVP), and the SV-min Skyrme describes the experimental data for the differential charge radii δr2\delta\langle r^{2} \rangle and charge radii RcR_{\rm c} within the theoretical uncertainties. The observed large variation in the charge radii of germanium isotopes is better accounted for by theoretical models incorporating ground state quadrupole correlations. This suggests that the polarization effects due to pairing and deformation contribute to the observed large odd-even staggering in the charge radii of the Ge isotopic chain.

Keywords

Cite

@article{arxiv.2404.06046,
  title  = {Nuclear charge radii of germanium isotopes around $N$ = 40},
  author = {S. J. Wang and A. Kanellakopoulos and X. F. Yang and S. W. Bai and J. Billowes and M. L. Bissell and K. Blaum and B. Cheal and C. S. Devlin and R. F. Garcia Ruiz and J. Z. Han and H. Heylen and S. Kaufmann and K. Konig and A. Koszorus and S. Lechner and S. Malbrunot-Ettenauer and W. Nazarewicz and R. Neugart and G. Neyens and W. Nortershauser and T. Ratajczyk and P. -G. Reinhard and L. V. Rodrıguez and S. Sels and L. Xie and Z. Y. Xu and D. T. Yordanov and Y. M. Yu},
  journal= {arXiv preprint arXiv:2404.06046},
  year   = {2024}
}

Comments

6 pages,5 figures