Odd-even mass differences of well and rigidly deformed nuclei in the rare earth region: A test of a newly proposed fit of average pairing matrix elements
T. V. Nhan Hao, N. N. Bao Nguyen, D. Quang Tam, P. Quentin, Meng-Hock, Koh, L. Bonneau

TL;DR
This paper tests a new method for determining average pairing matrix elements in deformed nuclei, showing it reproduces experimental odd-even mass differences and moments of inertia with accuracy comparable to direct data fits.
Contribution
The paper introduces a novel approach to calculate pairing matrix elements using the uniform gap method, accounting for systematic biases and Coulomb effects, and validates it against experimental data.
Findings
Accurately reproduces odd-even mass differences in rare-earth nuclei.
Achieves moments of inertia comparable to direct data fits.
Demonstrates efficiency of the new method in nuclear structure calculations.
Abstract
We discuss a test of a recently proposed approach to determine average pairing matrix elements within a given interval of single-particle states (sp) around the Fermi level as obtained in the so-called uniform gap method (UGM). It takes stock of the crucial role played by the averaged sp level density . These matrix elements are deduced within the UGM approach, from microscopically calculated and gaps obtained from analytical formulae of a semi-classical nature. Two effects generally ignored in similar fits have been taken care of. They are: (a) the correction for a systematic bias in choosing to fit pairing gaps corresponding to equilibrium deformation solutions as discussed by M\"{o}ller and Nix [Nucl. Phys. A 476, 1 (1992)] and (b) the correction for a systematic spurious enhancement of for protons in the vicinity of…
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Taxonomy
TopicsNuclear physics research studies · Advanced Chemical Physics Studies · Advanced NMR Techniques and Applications
