Description of proton radioactivity using the Coulomb and proximity potential model for deformed nuclei

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Abstract

Half-life predictions have been performed for the proton emitters with Z>50 in the ground state and isomeric state using the Coulomb and proximity potential model for deformed nuclei (CPPMDN). The agreement of the calculated values with the experimental data made it possible to predict some proton emissions that are not verified experimentally yet. For a comparison, the calculations also are performed using other theoretical models, such as the Gamow-like model of Zdeb et al. [Eur. Phys. J. A 52, 323 (2016)10.1140/epja/i2016-16323-7], the semiempirical relation of Hatsukawa et al. [Phys. Rev. C 42, 674 (1990)10.1103/PhysRevC.42.674], and the CPPM of Santhosh [Pramana 58, 611 (2002)]10.1007/s12043-002-0019-2. The Geiger-Nuttall law, originally observed for α decay, studied for proton radioactivity is found to work well provided it is plotted for the isotopes of a given proton emitter nuclide with the same value. The universal curve is found to be valid for proton radioactivity also as we obtained a single straight line for all proton emissions irrespective of the parents. Through the analysis of the experimentally measured half-lives of 44 proton emitters, the study revealed that the present systematic study lends support to a unified description for studying α decay, cluster radioactivity, and proton radioactivity.

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Santhosh, K. P., & Sukumaran, I. (2017). Description of proton radioactivity using the Coulomb and proximity potential model for deformed nuclei. Physical Review C, 96(3). https://doi.org/10.1103/PhysRevC.96.034619

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