English

Vibrational Modes in Strongly Deformed Nuclei

Nuclear Theory 2025-07-30 v1 Nuclear Experiment

Abstract

Low-energy vibrational excitations associated with the fluctuation of quadrupole deformed shapes are discussed within the frame of state-of-the-art Configuration Interaction calculations, actually performed via the Quasi-particle Vacua Shell Model version of the Monte Carlo Shell Model. Recently, low-lying γ\gamma bands in heavy strongly deformed nuclei were shown to be rotational KPK^P = 2+^+ excitations of triaxially deformed states (see T. Otsuka \etal, Eur. Phys. J. A 61, 126 (2025)) rather than vibrational excitations as traditionally interpreted. In this context, it is important to identify possible low-lying vibrational excitations and to characterize the excitation energy at which they emerge. Focusing on two typical examples, 166^{166}Er and 162^{162}Dy, vibrational states are indeed identified above the γ\gamma band using an extended version of the so-called T-plot. The phenomenon of shape coexistence is also shown to produce low-lying states below such vibrational band heads. These results suggest novel and rich structures in heavy deformed nuclei. While experimental counterparts are seen for some of such states, others are predictions opening doors to future dedicated experiments.

Keywords

Cite

@article{arxiv.2507.20275,
  title  = {Vibrational Modes in Strongly Deformed Nuclei},
  author = {Y. Tsunoda and T. Otsuka and N. Shimizu and T. Duguet and Y. Utsuno and T. Abe},
  journal= {arXiv preprint arXiv:2507.20275},
  year   = {2025}
}

Comments

6 pages, 5 figures

R2 v1 2026-07-01T04:20:58.449Z