English

Two-body Wave Functions, Compositeness, And The Internal Structure Of Dynamically Generated Resonances

High Energy Physics - Phenomenology 2017-03-22 v1 High Energy Physics - Experiment Nuclear Experiment Nuclear Theory Quantum Physics

Abstract

Recently, the compositeness, defined as the norm of a two-body wave function for bound and resonance states, has been investigated to discuss the internal structure of hadrons in terms of hadronic molecular components. From the studies of the compositeness, it has been clarified that the two-body wave function of a bound state can be extracted from the residue of the scattering amplitude at the bound state pole. Of special interest is that the two-body wave function from the scattering amplitude is automatically normalized. In particular, while the compositeness is unity for energy-independent interactions, it deviates from unity for energy-dependent interactions, which can be interpreted as a missing-channel contribution. In this manuscript, we show the formulation of the two-body wave function from the scattering amplitude, evaluate the compositeness for several dynamically generated resonances such as f0(980)f_{0} (980), Λ(1405)\Lambda (1405), and Ξ(1690)\Xi (1690), and investigate their internal structure in terms of the hadronic molecular components.

Keywords

Cite

@article{arxiv.1703.07176,
  title  = {Two-body Wave Functions, Compositeness, And The Internal Structure Of Dynamically Generated Resonances},
  author = {Takayasu Sekihara and Tetsuo Hyodo and Daisuke Jido and Junko Yamagata-Sekihara and Shigehiro Yasui},
  journal= {arXiv preprint arXiv:1703.07176},
  year   = {2017}
}

Comments

8 pages, 2 eps figures, talk given at the International Nuclear Physics Conference 2016 (INPC2016), Adelaide, Australia, 11-16 Sep. 2016

R2 v1 2026-06-22T18:52:22.789Z