4.7 Article

E2 rotational invariants of 01+ and 21+ states for 106Cd: The emergence of collective rotation

期刊

PHYSICS LETTERS B
卷 834, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.physletb.2022.137446

关键词

Coulomb excitation; Electromagnetic moments; Sum rules; Collective model; Shell model

资金

  1. U.S. Department of Energy [DE-AC05-000R22725]
  2. U.S. DOE [DE-ACO2-06CH11357, DE-ACO2-05CH11231, DE-AC52-07NA27344]
  3. DOE [DE-FG02-97ER41041, DE-FG02-97ER41033, DE -5C0014442]
  4. Australian Research Council [DP170101673]

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The collective structure of Cd-106 is investigated through multi-step Coulomb excitation, revealing important insights into the origin of nuclear collectivity and deformation.
The collective structure of Cd-106 is elucidated by multi-step Coulomb excitation of a 3.849 MeV/A beam of Cd-106 on a 1.1 mg/cm(2) Pb-208 target using GRETINA-CHICO2 at ATLAS. Fourteen E2 matrix elements were obtained. The nucleus Cd-108 is a prime example of emergent collectivity that possesses a simple structure: it is free of complexity caused by shape coexistence and has a small, but collectively active number of valence nucleons. This work follows in a long and currently active quest to answer the fundamental question of the origin of nuclear collectivity and deformation, notably in the cadmium isotopes. The results are discussed in terms of phenomenological models, the shell model, and Kumar-Cline sums of E2 matrix elements. The < 0(2)(+parallel to)E2 parallel to 2(1)(+)) matrix element is determined for the first time, providing a total, converged measure of the electric quadrupole strength, < Q(2)>, of the first-excited 2(1)(1) level relative to the 0(1)(+) ground state, which does not show an increase as expected of harmonic and anharmonic vibrations. Strong evidence for triaxial shapes in weakly collective nuclei is indicated; collective vibrations are excluded. This is contrary to the only other cadmium result of this kind in Cd-114 by C. Fahlander et al. (1988) [38], which is complicated by low-lying shape coexistence near midshell. (C) 2022 The Author(s). Published by Elsevier B.V.

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