English

Nucleon-pair coupling scheme in Elliott's SU(3) model

Nuclear Theory 2021-02-24 v1

Abstract

Elliott's SU(3) model is at the basis of the shell-model description of rotational motion in atomic nuclei. We demonstrate that SU(3) symmetry can be realized in a truncated shell-model space if constructed in terms of a sufficient number of collective SS, DD, GG, \dots pairs (i.e., with angular momentum zero, two, four, \dots) and if the structure of the pairs is optimally determined either by a conjugate-gradient minimization method or from a Hartree-Fock intrinsic state. We illustrate the procedure for 6 protons and 6 neutrons in the pfpf (sdgsdg) shell and exactly reproduce the level energies and electric quadrupole properties of the ground-state rotational band with SDGSDG (SDGISDGI) pairs. The SDSD-pair approximation without significant renormalization, on the other hand, cannot describe the full SU(3) collectivity. A mapping from Elliott's fermionic SU(3) model to systems with ss, dd, gg, \dots bosons provides insight into the existence of a decoupled collective subspace in terms of SS, DD, GG, \dots pairs.

Keywords

Cite

@article{arxiv.2101.11274,
  title  = {Nucleon-pair coupling scheme in Elliott's SU(3) model},
  author = {G. J. Fu and Calvin W. Johnson and P. Van Isacker and Zhongzhou Ren},
  journal= {arXiv preprint arXiv:2101.11274},
  year   = {2021}
}
R2 v1 2026-06-23T22:34:35.296Z