Nuclear Ground-State Masses and Deformations
P. Möller, J. R. Nix, W. D. Myers, W. J. Swiatecki
Abstract
We tabulate the atomic mass excesses and nuclear ground-state deformations of 8979 nuclei ranging from 16O to A=339. The calculations are based on the finite-range droplet macroscopic model and the folded-Yukawa single-particle microscopic model. Relative to our 1981 mass table the current results are obtained with an improved macroscopic model, an improved pairing model with a new form for the effective-interaction pairing gap, and minimization of the ground-state energy with respect to additional shape degrees of freedom. The values of only 9 constants are determined directly from a least-squares adjustment to the ground-state masses of 1654 nuclei ranging from 16O to 263106 and to 28 fission-barrier heights. The error of the mass model is 0.669~MeV for the entire region of nuclei considered, but is only 0.448~MeV for the region above N=65.
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