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  Nuclear moments of germanium isotopes near N=40

Kanellakopoulos, A., Yang, X. F., Bissell, M. L., Reitsma, M. L., Bai, S. W., Billowes, J., et al. (2020). Nuclear moments of germanium isotopes near N=40. Physical Review C, 102(5): 054331. doi:10.1103/PhysRevC.102.054331.

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 Creators:
Kanellakopoulos, A., Author
Yang, X. F., Author
Bissell, M. L., Author
Reitsma, M. L., Author
Bai, S. W., Author
Billowes, J., Author
Blaum, K.1, Author           
Borschevsky, A., Author
Cheal, B., Author
Devlin, C. S., Author
Garcia Ruiz, R. F. , Author
Heylen, H., Author
Kaufmann, S., Author
König, K., Author
Koszorús, Á., Author
Lechner, S., Author
Malbrunot-Ettenauer, S., Author
Neugart, R.1, Author           
Neyens, G., Author
Nörtershäuser, W., Author
Ratajczyk, T., AuthorRodríguez, L. V., AuthorSels, S., AuthorWang, S. J., AuthorXie, L., AuthorXu, Z. Y., AuthorYordanov, D. T., Author more..
Affiliations:
1Division Prof. Dr. Klaus Blaum, MPI for Nuclear Physics, Max Planck Society, ou_904548              

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Free keywords: Nuclear Experiment, nucl-ex,Nuclear Theory, nucl-th
 MPINP: Präzisionsexperimente - Abteilung Blaum
 Abstract: 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 $N = 40$.

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 Dates: 2020-11-30
 Publication Status: Published online
 Pages: -
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 Rev. Type: -
 Identifiers: arXiv: 2011.01659
DOI: 10.1103/PhysRevC.102.054331
 Degree: -

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Title: Physical Review C
  Other : Phys. Rev. C
Source Genre: Journal
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Publ. Info: New York, NY : American Physical Society
Pages: - Volume / Issue: 102 (5) Sequence Number: 054331 Start / End Page: - Identifier: ISSN: 0556-2813
CoNE: https://pure.mpg.de/cone/journals/resource/954925225009