
We compute the nuclear spin-orbit coupling from the Skyrme model. Previous attempts to do this were based on the product ansatz, and as such were limited to a system of two well-separated nuclei. Our calculation utilises a new method, and is applicable to the phenomenologically important situation of a single nucleon orbiting a large nucleus. We find that, to second order in perturbation theory, the coefficient of the spin-orbit coupling induced by pion field interactions has the wrong sign, but as the strength of the pion-nucleon interactions increases the correct sign is recovered non-perturbatively.
37 pages, 5 figures. v2: discussion of the literature improved, and other minor changes
High Energy Physics - Theory, Nuclear Theory (nucl-th), 70S20, 81V35, Nuclear Theory, High Energy Physics - Theory (hep-th), Nuclear and particle physics. Atomic energy. Radioactivity, Nuclear physics, shell model, FOS: Physical sciences, QC770-798
High Energy Physics - Theory, Nuclear Theory (nucl-th), 70S20, 81V35, Nuclear Theory, High Energy Physics - Theory (hep-th), Nuclear and particle physics. Atomic energy. Radioactivity, Nuclear physics, shell model, FOS: Physical sciences, QC770-798
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