Identification of Highly Deformed Even-Even Nuclides in the Neutron- and Proton-Rich Regions of the Nuclear Chart from the B(E2) and E2 Predictions in the Generalized Differential Equation Model
R. C. Nayak, S. Pattnaik

TL;DR
This paper predicts large nuclear deformations in neutron- and proton-rich even-even isotopes using the Generalized Differential Equation model, suggesting the existence of an Island of Inversion in heavy nuclei.
Contribution
It introduces a novel application of the Generalized Differential Equation model to predict B(E2) and E2 values, identifying potential large deformations in unexplored regions of the nuclear chart.
Findings
Large deformations (beta-2 > 0.3) predicted in multiple exotic isotopes.
Support for a new Island of Inversion in heavy-mass neutron-rich nuclei.
Identification of nuclei with significant collectivity and possible shell-breaking effects.
Abstract
We identify here possible occurrence of large deformations in the neutron- and proton-rich regions of the nuclear chart from extensive predictions of the values of the reduced quadrupole transition probability B-E2 for the transition from the ground state to the first 2+ state and the corresponding excitation energy E2 of even-even nuclei in the recently developed Generalized Differential Equation model exclusively meant for these physical quantities. This is made possible from our analysis of the predicted values of these two physical quantities and the corresponding deformation parameters derived from them such as the quadrupole deformation beta-2, the ratio of beta-2 to the Weisskopf single-particle beta-2 and the intrinsic electric quadruplole moment , calculated for a large number of both known as well as hitherto unknown even-even isotopes of Oxygen to Fermium (Z=8 to 100). Our…
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