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arXiv · 2111.14113

Appearance of peak in symmetry energy at N = 126 for Pb isotopic chain within relativistic energy density functional

Abstract

The newly derived relativistic energy density functional [\textcolor{blue}{ Phys. Rev. C \textbf{103}, 024305 (2021)}], which stems from the effective field theory motivated relativistic mean-field (E-RMF) is employed to establish the appearance of peak/kink in the symmetry energy over the isotopic chain of Pb-nuclei. The coherent density fluctuation model parametrization procedure for finite nuclei is adopted here to obtain the relativistic energy density functional at local density. The relativistic energy density functional from E-RMFT takes precedence over the Brückner energy density functional as it accurately predicts the empirical saturation density and binding energy per nucleon $E/A$, so-called 'Coester Band Problem'. Interestingly, using the relativistic energy density functional, it is possible to predict the peak at $N=126$ for recently developed G3 and widely used NL3 parameter sets, which is not observed for Brückener's functional in-spite of using the E-RMF density. From the present analysis, the newly fitted energy density functional is found to be minutely sensitive to the choice of the parameter sets employed.

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Jeet Amrit Pattnaik, T. M. Joshua, Ankit Kumar, M. Bhuyan, S. K. Patra. 2021-11-28. Appearance of peak in symmetry energy at N = 126 for Pb isotopic chain within relativistic energy density functional. https://doi.org/10.1103/physrevc.105.014318

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