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arXiv · 2209.12966

Deformation dependence of 2p-radioactivity half-lives: Probe with a new formula across the mass region with Z<82

Abstract

Effect of deformation on half-life of two-proton (2p) radioactivity is investigated across the periodic chart for nuclei with Z$<$82. 2p-decay half-lives are estimated by employing our newly proposed semi-empirical formula wherein the nuclear deformation has been incorporated in a phenomenological way. Robustness of the formula is demonstrated as it estimates the measured values quite accurately and, hence, reliably applied to predict the other possible 2p-emitters. For many proton rich nuclei for which experimental data on the decay energies are not available, we have used the theoretical values obtained from our calculations using the relativistic mean-field (RMF) approach. The uncertainties in the theoretical decay energy values are minimised by machine learning (ML) technique. Correlation of 2p-radioactivity with 2p-halo and deformation is probed. Our calculations show the phenomenon of shape coexistence in several 2p-emitters, wherein the prolate shape is found to be more predominant for the ground state.

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G. Saxena, Mamta Aggarwal, D. Singh, A. Jain, P. K. Sharma, H. L. Yadav. 2022-09-26. Deformation dependence of 2p-radioactivity half-lives: Probe with a new formula across the mass region with Z<82. https://doi.org/10.1088/1361-6471%2Fac991d

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