Evolution of E2 transition strength in deformed hafnium isotopes from new measurements on $^{172}$Hf, $^{174}$Hf, and $^{176}$Hf
M. Rudigier, K. Nomura, M. Dannhoff, R-B. Gerst, J. Jolie, N., Saed-Samii, S. Stegemann, J-M. R\'egis, L. M. Robledo, R., Rodr\'iguez-Guzm\'an, A. Blazhev, Ch. Fransen, N. Warr, K. O. Zell

TL;DR
This study provides new measurements of E2 transition strengths in deformed hafnium isotopes, compares them with theoretical models, and highlights the importance of mass-dependent effective charges in nuclear structure descriptions.
Contribution
First-time measurement of higher-lying state half-lives in Hf isotopes and comparison with advanced theoretical models to improve understanding of nuclear collectivity.
Findings
Discrepancies with previous half-life measurements resolved.
Measured half-lives support the mass-dependent effective boson charge.
Data align with Coulomb excitation results, validating the new measurements.
Abstract
The available data for E2 transition strengths in the region between neutron-deficient Hf and Pt isotopes are far from complete. More and precise data are needed to enhance the picture of structure evolution in this region and to test state-of-the-art nuclear models. In a simple model, the maximum collectivity is expected at the middle of the major shell. However, for actual nuclei, this picture may no longer be the case, and one should use a more realistic nuclear-structure model. We address this point by studying the spectroscopy of Hf. We remeasure the 2^+_1 half-lives of 172,174,176Hf, for which there is some disagreement in the literature. The main goal is to measure, for the first time, the half-lives of higher-lying states of the rotational band. The new results are compared to a theoretical calculation for absolute transition strengths. The half-lives were measured using…
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