arXiv:2303.16483·v2·Nuclear Theory
Low-energy quadrupole collectivity of Sn nuclei in self-consistent calculations with a semi-realistic interaction
Y. Omura · H. Nakada · K. Abe · M. Takahashi
Abstract
Quadrupole collectivity of the lowest-lying states, focusing on and , have been investigated for the Sn nuclei by applying the self-consistent approaches with the semi-realistic interaction M3Y-P6. Both and are well reproduced by the spherical Hartree-Fock-Bogolyubov (HFB) plus quasiparticle random-phase approximation (QRPA) calculations in , without adjustable parameters. The measured values in the neutron-deficient Sn nuclei cast a puzzle. In , the spherical HFB\,+\,QRPA calculations give too strong , opposite to the shell-model predictions within the one major shell. Via the constrained-HFB (CHFB) calculations, it is found that the neutron-deficient Sn nuclei are soft against the quadrupole deformation, accounting for the limited applicability of the HFB\,+\,QRPA approach. In particular, the potential energy curves (PECs) are almost flat in the range of in Sn. We confirm that the near degeneracy of and triggers weak quadrupole deformation and its balance with the pairing makes PECs flat, which is qualitatively consistent with a recent shell model result in an extended model space, by the calculations shifting the single-particle energy spacing and the pairing strength. These conclusions are supported by the proton-to-neutron ratios of the transition matrix elements and the reference values of with the angular-momentum projection on top of the CHFB solutions.
Comments: 25 pages including 10 figures. To be published in PRC