Effects of the Spin-Orbit and Tensor Interactions on the $M1$ and $E2$ Excitations in Light Nuclei
Abstract
The effects of varying the spin-orbit and tensor components of a realistic interaction on excitation rates and are studied on nuclei in the and shells. Not only the total but also the spin and orbital parts separately are studied. The single-particle energies are first calculated with the same interaction that is used between the valence nucleons. Later this stringent condition is relaxed somewhat and the level is raised relative to . For nuclei up to , much better results i.e stronger rates are obtained by increasing the strength of the spin-orbit interaction relative to the free value. This is probably also true for , but presents some difficulties. The effects of weakening the tensor interaction are also studied. On a more subtle level, the optimum spin-orbit interaction in the lower half of the shell, as far as excitations are concerned, is substantially larger than the difference in . A larger spin-orbit splitting is also needed to destroy the triaxiality in . Also studied are how much orbital and spin strength lies in an observable region and how much is buried in the grass at higher energies. It is noted that for many nuclei the sum is very close to , indicating that the summed cross terms are very small.
Keywords
Cite
@article{arxiv.nucl-th/9604003,
title = {Effects of the Spin-Orbit and Tensor Interactions on the $M1$ and $E2$ Excitations in Light Nuclei},
author = {M. S. Fayache and Y. Y. Sharon and L. Zamick and P. von Neumann-Cosel and A. Richter},
journal= {arXiv preprint arXiv:nucl-th/9604003},
year = {2009}
}
Comments
39 pages, revtex 3.0