Systematic investigations of positive-parity doublet bands with three-quasiparticle configurations in Cs
arXiv:1910.04523 · doi:10.1103/PhysRevC.100.034328
Abstract
The experimental features of positive-parity doublet bands in the odd-\emph{A} cesium isotopes Cs, including angular momentum alignment, energy staggering, etc. are studied systematically and compared to those of the candidate chiral bands in the adjacent odd-odd Cs isotopes. The configuration assignments and the dynamics of these bands are discussed. The self-consistent tilted axis cranking relativistic mean-field calculations are performed with configuration reassigned to these bands. The experimental level schemes of four nuclei are well reproduced, and the calculations also show four nuclei have obvious triaxial deformations and thus support the candidate chiral doublet bands in Cs.
18 pages, 10 figures
References in corpus (11)
- Relativistic Continuum Hartree Bogoliubov Theory for Ground State Properties of Exotic Nuclei
- New parametrization for the nuclear covariant energy density functional with point-coupling interaction
- Progress on tilted axis cranking covariant density functional theory for nuclear magnetic and antimagnetic rotation
- Novel structure for magnetic rotation bands in 60Ni
- From chiral vibration to static chirality in ^{135}Nd
- Evidence for Multiple Chiral Doublet Bands in Ce
- Rod-shaped Nuclei at Extreme Spin and Isospin
- Multiple chiral doublet bands of identical configuration in 103Rh
- Multiple Chirality in Nuclear Rotation: A Microscopic View
- Covariant density functional theory for antimagnetic rotation
- Multiple chiral doublet candidate nucleus Rh in a relativistic mean-field approach