# Shape staggering of mid-shell mercury isotopes from in-source laser   spectroscopy compared with Density Functional Theory and Monte Carlo Shell   Model calculations

**Authors:** S. Sels, T. Day Goodacre, B. A. Marsh, A. Pastore, W. Ryssens, Y., Tsunoda, N. Althubiti, B. Andel, A. N. Andreyev, D. Atanasov, A. E. Barzakh,, M. Bender, J. Billowes, K. Blaum, T. E. Cocolios, J.G. Cubiss, J., Dobaczewski, G. J. Farooq-Smith, D. V. Fedorov, V. N. Fedosseev, K. T., Flanagan, L.P. Gaffney, L. Ghys, P-H. Heenen, M. Huyse, S. Kreim, D. Lunney,, K. M. Lynch, V. Manea, Y. Martinez Palenzuela, T. M. Medonca, P. L. Molkanov,, T. Otsuka, J. P. Ramos, R. E. Rossel, S. Rothe, L. Schweikhard, M. D., Seliverstov, P. Spagnoletti, C. Van Beveren, P. Van Duppen, M. Veinhard, E., Verstraelen, A. Welker, K. Wendt, F. Wienholtz, R.N. Wolf, A. Zadvornaya

arXiv: 1902.11211 · 2019-05-01

## TL;DR

This study combines laser spectroscopy experiments with theoretical DFT and MCSM calculations to investigate shape staggering in mid-shell mercury isotopes, revealing charge radius jumps and orbital occupancy changes.

## Contribution

It provides the first direct measurements of isotope shifts and hyperfine structures for $^{177-180}$Hg and compares these with advanced theoretical models, highlighting the sensitivity of shape coexistence predictions.

## Key findings

- Observation of the odd-even nuclear shape staggering endpoint.
- Qualitative agreement of DFT and MCSM with experimental data.
- Identification of orbital occupancy changes as the mechanism for shape staggering.

## Abstract

Neutron-deficient $^{177-185}$Hg isotopes were studied using in-source laser resonance-ionization spectroscopy at the CERN-ISOLDE radioactive ion-beam facility, in an experiment combining different detection methods tailored to the studied isotopes. These include either alpha-decay tagging or Multi-reflection Time-of-Flight gating to identify the isotopes of interest. The endpoint of the odd-even nuclear shape staggering in mercury was observed directly by measuring for the first time the isotope shifts and hyperfine structures of $^{177-180}$Hg. Changes in the mean-square charge radii for all mentioned isotopes, magnetic dipole and electric quadrupole moments of the odd-A isotopes and arguments in favor of $I = 7/2$ spin assignment for $^{177,179}$Hg were deduced. Experimental results are compared with Density Functional Theory (DFT) and Monte-Carlo Shell Model (MCSM) calculations. DFT calculations with several Skyrme parameterizations predict a large jump in the charge radius around the neutron $N = 104$ mid shell, with an odd-even staggering pattern related to the coexistence of nearly-degenerate oblate and prolate minima. This near-degeneracy is highly sensitive to many aspects of the effective interaction, a fact that renders perfect agreement with experiment out of reach for current functionals. Despite this inherent diffculty, the SLy5s1 and a modified UNEDF1^{SO} parameterization predict a qualitatively correct staggering that is off by two neutron numbers. MCSM calculations of states with the experimental spins and parities show good agreement for both electromagnetic moments and the observed charge radii. A clear mechanism for the origin of shape staggering within this context is identified: a substantial change in occupancy of the proton $\pi h_{9/2}$ and neutron $\nu i_{13/2}$ orbitals.

## Full text

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## Figures

18 figures with captions in the complete paper: https://tomesphere.com/paper/1902.11211/full.md

## References

107 references — full list in the complete paper: https://tomesphere.com/paper/1902.11211/full.md

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Source: https://tomesphere.com/paper/1902.11211