Light and strange baryons, two-baryon systems and the chiral symmetry of QCD
arXiv:hep-ph/9711490 · doi:10.1016/S0375-9474(98)00252-8
Abstract
Beyond the scale of spontaneous breaking of chiral symmetry light and strange baryons should be considered as systems of three constituent quarks with confining interaction and a chiral interaction that is mediated by Goldstone bosons between the constituent quarks. The flavor-spin structure and sign of the short-range part of the Goldstone boson exchange interaction reduces the symmetry down to , induces hyperfine splittings and provides correct ordering of the lowest states with positive and negative parity. A unified description of light and strange baryon spectra calculated in a semirelativistic framework is presented. It is demonstrated that the same short-range part of the Goldstone boson exchange between the constituent quarks induces a strong short-range repulsion in system when the latter is treated as system. Similar to the system there should be a short-range repulsion in other and two-baryon systems. We also find that the compact 6Q system with the "H-particle" quantum numbers lies a few hundreds MeV above the threshold. It then suggests that the deeply bound H-particle should not exist.
10 pages, Invited talk given at International Conference on Hypernuclear and Strange Particle Physics (HYP97, Brookhaven National Laboratory, October 13-18, 1997, USA), to appear in Nuclear Physics A