arXiv:2609.16615·v1·Nuclear Theory
Revisiting nuclear chirality in Cs with relativistic configuration-interaction density functional theory
Yakun Wang
Abstract
Nuclear chirality in Cs is revisited within the microscopic relativistic configuration-interaction density functional (ReCD) theory. The positive-parity doublet bands are investigated by simultaneously examining their energy spectra, electromagnetic transition probabilities, factors, spectroscopic quadrupole moments, and underlying angular-momentum geometry. Without introducing additional parameters adjusted to the spectroscopic data, the ReCD calculations provide an overall satisfactory description of the available experimental observables. In particular, a comprehensive analysis of the available experimental data and the calculated spectroscopic observables indicates qualitative resemblances between the partner bands around . A microscopic analysis of the angular-momentum geometry through \textit{azimuthal plots} reveals a distinct evolution of the rotational mode with increasing spin: chiral vibration at , static chirality at , and a transition toward planar rotation at higher spins. These results suggest that static chiral geometry in Cs is confined to a narrow spin region around within the present ReCD calculations.
Comments: 17 pages, 4 figures