English

Study of chirally motivated low-energy $K^-$ optical potentials

Nuclear Theory 2008-11-26 v2

Abstract

The KK^- optical potential in the nuclear medium is evaluated self consistently from a free-space KNK^-N tt matrix constructed within a coupled-channel chiral approach to the low-energy KˉN\bar K N data. The chiral-model parameters are fitted to a select subset of the low-energy data {\it plus} the KK^- atomic data throughout the periodic table. The resulting attractive KK^- optical potentials are relatively `shallow', with central depth of the real part about 55 MeV, for a fairly reasonable reproduction of the atomic data with χ2/N2.2\chi^2 / N \approx 2.2. Relatively `deep' attractive potentials of depth about 180 MeV, which result in other phenomenological approaches with χ2/N1.5\chi^2 / N \approx 1.5, are ruled out within chirally motivated models. Different physical data input is required to distinguish between shallow and deep KK^- optical potentials. The (Kstop,πK^{-}_{\rm stop},\pi) reaction could provide such a test, with exclusive rates differing by over a factor of three for the two classes of potentials. Finally, forward (K,pK^-,p) differential cross sections for the production of relatively narrow deeply bound KK^- {\it nuclear} states are evaluated for deep KK^- optical potentials, yielding values considerably lower than those estimated before.

Cite

@article{arxiv.nucl-th/0104087,
  title  = {Study of chirally motivated low-energy $K^-$ optical potentials},
  author = {A. Cieply and E. Friedman and A. Gal and J. Mares},
  journal= {arXiv preprint arXiv:nucl-th/0104087},
  year   = {2008}
}

Comments

22 pages, 3 figures, minor revisions, Nucl. Phys. A in press