English

K^- nuclear potentials from in-medium chirally motivated models

Nuclear Theory 2013-05-29 v2 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

A self consistent scheme for constructing K^- nuclear optical potentials from subthreshold in-medium Kbar-N s-wave scattering amplitudes is presented and applied to analysis of kaonic atoms data and to calculations of K^- quasibound nuclear states. The amplitudes are taken from a chirally motivated meson-baryon coupled-channel model, both at the Tomozawa-Weinberg leading order and at the next to leading order. Typical kaonic atoms potentials are characterized by a real part -Re V(K^-;chiral)=(85+/-5) MeV at nuclear matter density, in contrast to half this depth obtained in some derivations based on in-medium Kbar-N threshold amplitudes. The moderate agreement with data is much improved by adding complex rho- and rho^2-dependent phenomenological terms, found to be dominated by rho^2 contributions that could represent Kbar-NN -> YN absorption and dispersion, outside the scope of meson-baryon chiral models. Depths of the real potentials are then near 180 MeV. The effects of p-wave interactions are studied and found secondary to those of the dominant s-wave contributions. The in-medium dynamics of the coupled-channel model is discussed and systematic studies of K^- quasibound nuclear states are presented.

Keywords

Cite

@article{arxiv.1108.1745,
  title  = {K^- nuclear potentials from in-medium chirally motivated models},
  author = {A. Cieplý and E. Friedman and A. Gal and D. Gazda and J. Mareš},
  journal= {arXiv preprint arXiv:1108.1745},
  year   = {2013}
}

Comments

extension of Phys. Lett. B 702, 402 (2011) by the same authors; v2: minor corrections, matching PRC version

R2 v1 2026-06-21T18:47:52.962Z