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  Precision spectroscopy on 9Be overcomes limitations from nuclear structure

Dickopf, S., Sikora, B., Kaiser, A., Müller, M., Ulmer, S., Yerokhin, V. A., et al. (2024). Precision spectroscopy on 9Be overcomes limitations from nuclear structure. Nature, 632, 757-761. doi:10.1038/s41586-024-07795-1.

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https://arxiv.org/abs/2409.06306 (Preprint)
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 Creators:
Dickopf, Stefan1, Author                 
Sikora, Bastian2, Author           
Kaiser, Annabelle1, Author                 
Müller, Marius1, Author                 
Ulmer, Stefan1, Author                 
Yerokhin, Vladimir A.2, Author                 
Harman, Zoltán2, Author           
Keitel, Christoph H.2, Author                 
Mooser, Andreas1, Author                 
Blaum, Klaus1, Author                 
Affiliations:
1Division Prof. Dr. Klaus Blaum, MPI for Nuclear Physics, Max Planck Society, ou_904548              
2Division Prof. Dr. Christoph H. Keitel, MPI for Nuclear Physics, Max Planck Society, ou_904546              

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 MPINP: Präzisionsexperimente - Abteilung Blaum
 MPINP: Expt. muTEx - Abteilung Blaum
 MPINP: Research group Z. Harman – Division C. H. Keitel
 Abstract: Many powerful tests of the standard model of particle physics and searches for new physics with precision atomic spectroscopy are hindered by our lack of knowledge of nuclear properties. Ideally, these properties may be derived from precise measurements of the most sensitive and theoretically best-understood observables, often found in hydrogen-like systems. Although these measurements are abundant for the electric properties of nuclei, they are scarce for the magnetic properties, and precise experimental results are limited to the lightest of nuclei1–4. Here we focus on 9Be, which offers the unique possibility to use comparisons between different charge states available for high-precision spectroscopy in Penning traps to test theoretical calculations typically obscured by nuclear structure. In particular, we perform high- precision spectroscopy of the 1s hyperfine and Zeeman structure in hydrogen-like 9Be3+. We determine the effective Zemach radius with an uncertainty of 500 ppm, and the bare nuclear magnetic moment with an uncertainty of 0.6 parts per billion— uncertainties unmatched beyond hydrogen. Moreover, we compare our measurements with the measurements conducted on the three-electron charge state 9Be+ (ref. 5), which enables testing the calculation of multi-electron diamagnetic shielding effects of the nuclear magnetic moment at the parts per billion level. Furthermore, we test the quantum electrodynamics methods used for the calculation of the hyperfine splitting. Our results serve as a crucial benchmark for transferring high-precision results of nuclear magnetic properties across different electronic configurations.

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 Dates: 2024-08-14
 Publication Status: Published online
 Pages: 6
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Title: Nature
  Abbreviation : Nature
Source Genre: Journal
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Publ. Info: London : Nature Publishing Group
Pages: - Volume / Issue: 632 Sequence Number: - Start / End Page: 757 - 761 Identifier: ISSN: 0028-0836
CoNE: https://pure.mpg.de/cone/journals/resource/954925427238