English

Probing Quadruple Deformation in Transitional Nuclei via Angular Momentum Projection

Nuclear Theory 2026-08-03 v1

Abstract

Within the interacting boson model (IBM), a geometric analysis of transitional nuclei is carried out through angular momentum projection of the intrinsic coherent state. The results indicate that KK-mixing effects in the calculations are typically negligible, validating the use of KK-fixed projection for semiclassical analyses of the spin dependence of quadrupole deformation in the IBM. Further analysis indicates that in a rotating transitional system, quadrupole deformation is stretched with increasing angular momentum, providing a geometrically intuitive perspective on the commonly observed Jacobi-type transitions, as exemplified by the case studies of 160^{160}Gd and 162^{162}Dy. The method is additionally applied to the yrast states of 170^{170}Os to probe quadrupole deformation changes linked to the observed low-spin B(E2)B(E2) anomaly behavior, demonstrating the capability of IBM-based angular momentum projection in interpreting exotic collective phenomena.

Cite

@article{arxiv.2608.02247,
  title  = {Probing Quadruple Deformation in Transitional Nuclei via Angular Momentum Projection},
  author = {Xian-Zhi Zhao and Sheng-Nan Wang and Yu Zhang},
  journal= {arXiv preprint arXiv:2608.02247},
  year   = {2026}
}

Comments

14 pages,9 figures