Understanding Xe isotopes near through the prolate-oblate shape phase transition
arXiv:2512.09265 · doi:10.1103/vkdr-1716
Abstract
A simple algebraic scheme incorporating the prolate-oblate shape phase transition (SPT) is proposed within the framework of the interacting boson model to describe the quadrupole deformation features of Xe isotopes near . The analysis demonstrates that novel -soft modes, characterized by the unusual quadrupole moments and , can emerge near the critical point of this SPT. This finding is further applied to interpret the properties of low-lying states in the relevant Xe nuclei, particularly the experimentally observed nearly vanishing spectroscopic quadrupole moment , thereby offering new insights into the structure of a -soft deformed nucleus.
10 pages, 5 figures
References in corpus (8)
- Analytic predictions for nuclear shapes, the prolate dominance and the prolate-oblate shape transition in the proxy-SU(3) model
- Proxy-SU(3) symmetry in heavy deformed nuclei
- Simple, empirical order parameter for a first order quantum phase transition in atomic nuclei
- Gamma-soft Analog of the Confined Beta-soft Rotor Model
- Structure of Xe through multi-reference energy density functional calculations
- Emerging collectivity from the nuclear structure of Xe: Inelastic neutron scattering studies and shell-model calculations
- Prolate-oblate asymmetric shape phase transition in the interacting boson model with SU (3) higher-order interactions
- Coupling of pairing and triaxial shape vibrations in collective states of -soft nuclei