English

Shape coexistence in Ne isotopes and hyperon impurity effect on low-lying states

Nuclear Theory 2024-07-23 v1

Abstract

Based on the beyond-mean-field Skyrme-Hartree-Fock model, we investigate the shape coexistence in Ne isotopes and the effect of \la\la hyperon on the energy level structure in the nuclei. The up-to-date Skyrme-type N\laN\la interaction SLL4 and the NNNN interaction SGII are employed. Low-lying energy spectra of 20,22,24,26,28,30,32,34^{20,22,24,26,28,30,32,34}Ne, including the low-lying states with J6J\leq 6, are predicted, discussed in detail, and found in good agreement with experimental results. The electric quadrupole transition rate is also examined. The coexistences of a ground state rotational band and a \be\be vibrational band are revealed in 20,22,24^{20,22,24}Ne. Unlike the previously discovered shrinkage effect of \las\la_{s} on the ground state nuclei, it is found that the \las\la_{s} may alter the excitation mode of the second band by affecting the distribution of the collective wave function, thereby causing the \be\be vibrational band transitions to a vibrational band with equidistant energy levels.

Keywords

Cite

@article{arxiv.2407.15048,
  title  = {Shape coexistence in Ne isotopes and hyperon impurity effect on low-lying states},
  author = {Huai-Tong Xue and Ji-Wei Cui and Q. B. Chen and Xian-Rong Zhou and Hiroyuki Sagawa},
  journal= {arXiv preprint arXiv:2407.15048},
  year   = {2024}
}

Comments

12 pages, 6 figures

R2 v1 2026-06-28T17:48:34.420Z