English

Three-body spin-orbit forces from chiral two-pion exchange

Nuclear Theory 2009-11-10 v1

Abstract

Using chiral perturbation theory, we calculate the density-dependent spin-orbit coupling generated by the two-pion exchange three-nucleon interaction involving virtual Δ\Delta-isobar excitation. From the corresponding three-loop Hartree and Fock diagrams we obtain an isoscalar spin-orbit strength Fso(kf)F_{\rm so}(k_f) which amounts at nuclear matter saturation density to about half of the empirical value of 9090 MeVfm5^5. The associated isovector spin-orbit strength Gso(kf)G_{\rm so}(k_f) comes out about a factor of 20 smaller. Interestingly, this three-body spin-orbit coupling is not a relativistic effect but independent of the nucleon mass MM. Furthermore, we calculate the three-body spin-orbit coupling generated by two-pion exchange on the basis of the most general chiral ππNN\pi\pi NN-contact interaction. We find similar (numerical) results for the isoscalar and isovector spin-orbit strengths Fso(kf)F_{\rm so}(k_f) and Gso(kf)G_{\rm so}(k_f) with a strong dominance of the p-wave part of the ππNN\pi\pi NN-contact interaction and the Hartree contribution.

Keywords

Cite

@article{arxiv.nucl-th/0312058,
  title  = {Three-body spin-orbit forces from chiral two-pion exchange},
  author = {N. Kaiser},
  journal= {arXiv preprint arXiv:nucl-th/0312058},
  year   = {2009}
}

Comments

8 pages, 4figure, published in : Physical Review C68, 054001 (2003)

R2 v1 2026-07-22T18:30:50.107Z