English

The $\Lambda(1405)$ resonance as a genuine three-quark or molecular state

Nuclear Theory 2022-07-13 v2 High Energy Physics - Phenomenology

Abstract

The mechanism for the formation of the Λ(1405)\Lambda(1405) resonance is studied in a chiral quark model that includes quark-meson as well as contact (four point) interactions. The negative-parity SS-wave scattering amplitudes for strangeness 1-1 and 11 are calculated within a unified coupled-channel framework that includes the KNKN, KˉN\bar{K}N, πΣ\pi\Sigma, ηΛ\eta\Lambda, KΞK\Xi, πΛ\pi\Lambda, and ηΣ\eta\Sigma channels and possible genuine three-quark bare singlet and octet states corresponding to 12\frac12^- resonances. We show that in order to reproduce the scattering amplitudes in the S01S_{01} partial wave it is important to include the pertinent three-quark octet states as well as the singlet state, while the inclusion of the contact term is not mandatory. The Laurent-Pietarinen expansion is used to determine the SS-matrix poles. Following their evolution as a function of increasing interaction strength, the mass of the singlet state is strongly reduced due to the attractive self-energy in the πΣ\pi\Sigma and KˉN\bar{K}N channels; when it drops below the KNKN threshold, the state acquires a dominant KˉN\bar{K}N component which can be identified with a molecular state. The attraction between the kaon and the nucleon is generated through the KˉNΛ\bar{K}N\Lambda^* interaction rather than by meson-nucleon forces.

Keywords

Cite

@article{arxiv.2201.01489,
  title  = {The $\Lambda(1405)$ resonance as a genuine three-quark or molecular state},
  author = {B. Golli and H. Osmanović and S. Širca},
  journal= {arXiv preprint arXiv:2201.01489},
  year   = {2022}
}

Comments

13 pages, 9 figures. Updated results and discussion of dynamical generation of resonances

R2 v1 2026-06-24T08:40:36.582Z