The quest of shape coexistence in Zr isotopes
J.E. Garcia-Ramos, K. Heyde

TL;DR
This study uses the interacting boson model with configuration mixing to analyze shape coexistence and deformation in Zr isotopes around A~100, successfully reproducing experimental data and revealing the onset of deformation at 100Zr.
Contribution
It provides a comprehensive theoretical analysis of shape coexistence in Zr isotopes using configuration mixing, matching experimental data and elucidating deformation mechanisms.
Findings
Ground states are spherical for 94-98Zr and deformed for 100-110Zr.
Sudden onset of deformation at 100Zr due to lowering of intruder configurations.
Good agreement between calculated and experimental observables.
Abstract
The mass region with A~100 and Z~40 is known to experience a sudden onset of deformation. The presence of the subshell closure makes feasible to create particle-hole excitations at a moderate excitation energy and, therefore, likely intruder states could be present in the low-lying spectrum. In other words, shape coexistence is expected to be a key ingredient to understand this mass region. The aim of this work is to describe excitation energies, transition rates, radii, and two-neutron separation energies for the even-even 94-110Zr nuclei and, moreover, to obtain information about wave functions and deformation. The interacting boson model with configuration mixing will be the framework to study the even-even Zr nuclei, considering only two types of configurations: 0particle-0hole and 2p-2h excitations. On one hand, the parameters appearing in the Hamiltonian and in the E2…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
