Changes in nuclear structure along the Mn isotopic chain studied via charge radii
H. Heylen, C. Babcock, R. Beerwerth, J. Billowes, M.L. Bissell, K., Blaum, J. Bonnard, P. Campbell, B. Cheal, T. Day Goodacre, D. Fedorov, S., Fritzsche, R.F. Garcia Ruiz, W. Geithner, Ch. Geppert, W. Gins, L.K. Grob, M., Kowalska, K. Kreim, S.M. Lenzi, I.D. Moore, B. Maass

TL;DR
This study measures charge radii of manganese isotopes to investigate nuclear shape evolution, revealing increased deformation near N=40 and combining experimental data with theoretical models for comprehensive insight.
Contribution
It provides new charge radii data for Mn isotopes and combines experimental results with theoretical modeling to analyze nuclear shape changes across the isotopic chain.
Findings
Development of deformation towards N=40 confirmed
Charge radii changes align with Monte Carlo Shell Model predictions
Deformation involves shape fluctuations and triaxiality
Abstract
The hyperfine spectra of Mn were measured in two experimental runs using collinear laser spectroscopy at ISOLDE, CERN. Laser spectroscopy was performed on the atomic and ionic transitions, yielding two sets of isotope shifts. The mass and field shift factors for both transitions have been calculated in the multiconfiguration Dirac-Fock framework and were combined with a King plot analysis in order to obtain a consistent set of mean-square charge radii which, together with earlier work on neutron-deficient Mn, allow the study of nuclear structure changes from across up to . A clear development of deformation is observed towards , confirming the conclusions of the nuclear moments studies. From a Monte Carlo Shell…
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