6533b855fe1ef96bd12afd77
RESEARCH PRODUCT
Nuclear Moments of Germanium Isotopes around $N$ = 40
A. KanellakopoulosX. F. YangM. L. BissellM. L. ReitsmaS. W. BaiJ. BillowesK. BlaumA. BorschevskyB. ChealC. S. DevlinR. F. Garcia RuizH. HeylenS. KaufmannK. K��nig��. Koszor��sS. LechnerS. Malbrunot-ettenauerR. NeugartG. NeyensW. N��rtersh��userT. RatajczykL. V. Rodr��guezS. SelsS. J. WangL. XieZ. Y. XuD. T. Yordanovsubject
Nuclear Theory (nucl-th)nucl-thNuclear TheoryNuclear Physics - TheoryFOS: Physical sciencesNuclear Physics - ExperimentPhysics::Atomic PhysicsNuclear Experiment (nucl-ex)nucl-exNuclear Experimentdescription
Collinear laser spectroscopy measurements were performed on $^{69,71,73}$Ge isotopes ($Z = 32$) at ISOLDE-CERN. The hyperfine structure of the $4s^2 4p^2 \, ^3P_1 \rightarrow 4s^2 4p 5s \, ^3P_1^o$ transition of the germanium atom was probed with laser light of 269 nm, produced by combining the frequency-mixing and frequency-doubling techniques. The hyperfine fields for both atomic levels were calculated using state-of-the-art atomic relativistic Fock-space coupled-cluster calculations. A new $^{73}$Ge quadrupole moment was determined from these calculations and previously measured precision hyperfine parameters, yielding $Q_{\rm s}$ = $-$0.198(4) b, in excellent agreement with the literature value from molecular calculations. The moments of $^{69}$Ge have been revised: $\mu$ = +0.920(5) $\mu_{N}$ and $Q_{\rm s}$= +0.114(8) b, and those of $^{71}$Ge have been confirmed. The experimental moments around $N = 40$ are interpreted with large-scale shell-model calculations using the JUN45 interaction, revealing rather mixed wave function configurations, although their $g$-factors are lying close to the effective single-particle values. Through a comparison with neighboring isotones, the structural change from the single-particle nature of nickel to deformation in germanium is further investigated around $N = 40$.
year | journal | country | edition | language |
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2020-11-03 |