English

Structure of exotic hadrons by a weak-binding relation with finite-range correction

High Energy Physics - Phenomenology 2022-07-21 v3 Nuclear Theory

Abstract

The composite nature of a shallow bound state is studied by using the weak-binding relation, which connects the compositeness of the bound state with observables. We first show that the previous weak-binding relation cannot be applied to the system with a large effective range. To overcome this difficulty, we introduce the finite-range correction by redefining the typical length scale in the weak-binding relation. A method to estimate the uncertainty of the compositeness is proposed. It is numerically demonstrated that the range correction enlarges the applicable region of the weak-binding relation. Finally, we apply the improved weak-binding relation to the actual hadrons, nuclei, and atomic systems [deuteron, X(3872)X(3872), Ds0(2317)D^{*}_{s0}(2317), Ds1(2460)D_{s1}(2460), NΩN\Omega dibaryon, ΩΩ\Omega\Omega dibaryon, Λ3H{}^{3}_{\Lambda}{\rm H}, and 4He{}^{4}{\rm He} dimer] to discuss their internal structure from the compositeness. We present a reasonable estimation of the compositeness of the deuteron by properly taking into account the uncertainty. The results of X(3872)X(3872) and the NΩN\Omega dibaryon show that the range correction is important to estimate the compositeness of physical states.

Keywords

Cite

@article{arxiv.2205.08470,
  title  = {Structure of exotic hadrons by a weak-binding relation with finite-range correction},
  author = {Tomona Kinugawa and Tetsuo Hyodo},
  journal= {arXiv preprint arXiv:2205.08470},
  year   = {2022}
}

Comments

18 pages, 11 figures, 5 tables, published version

R2 v1 2026-06-24T11:20:10.695Z