English

Shape phase transitions in odd-A Zr isotopes

Nuclear Theory 2021-01-01 v2 Nuclear Experiment

Abstract

Spectroscopic properties that characterize shape phase transitions in neutron-rich odd-A Zr isotopes are investigated using the framework of nuclear density functional theory and particle-core coupling. The interacting-boson Hamiltonian of the even-even core nuclei, and the single-particle energies and occupation probabilities of the unpaired neutron are completely determined by deformation constrained self-consistent mean-field calculations based on the relativistic Hartree-Bogoliubov model with a choice of a universal energy density functional and pairing interaction. The triaxial (β,γ)(\beta,\gamma) deformation energy surfaces for even-even 94102^{94-102}Zr indicates transition from triaxial or γ\gamma-soft (94,96^{94,96}Zr) to prolate (98^{98}Zr), and triaxial (100,102^{100,102}Zr) shapes. The corresponding low-energy excitation spectra of the odd-A Zr isotopes are in very good agreement with recent experimental results. Consistent with the structural evolution of the neighboring even-even Zr nuclei, the state-dependent effective deformations and their fluctuations in the odd-A isotopes indicate a pronounced discontinuity around the transitional nucleus 99^{99}Zr.

Keywords

Cite

@article{arxiv.2006.16662,
  title  = {Shape phase transitions in odd-A Zr isotopes},
  author = {K. Nomura and T. Nikšić and D. Vretenar},
  journal= {arXiv preprint arXiv:2006.16662},
  year   = {2021}
}

Comments

15 pages, 10 figures, 4 tables

R2 v1 2026-06-23T16:43:47.698Z