English

Compositeness of S-wave weakly-bound states from next-to-leading order Weinberg's relations

High Energy Physics - Phenomenology 2022-08-24 v2 Nuclear Theory

Abstract

We discuss a model-independent estimator of the likelihood of the compositeness of a shallow S-wave bound or virtual state. The approach is based on an extension of Weinberg's relations in Phys. Rev. 137, B672 (1965) and it relies only on the proximity of the energy of the state to the two-hadron threshold to which it significantly couples. The scheme only makes use of the experimental scattering length and the effective range low energy parameters, and it is shown to be fully consistent for predominantly molecular hadrons. As explicit applications, we analyse the case of the deuteron, the 1S0^1{\rm S}_0 nucleon-nucleon virtual state and the exotic Ds0(2317)±D^{\ast}_{s0}(2317)^\pm, and find strong support to the molecular interpretation in all cases. Results are less conclusive for the Ds0(2317)±D^{\ast}_{s0}(2317)^\pm, since the binding energy of this state is significantly higher than that of the deuteron, and the approach employed here is at the limit of its applicability. We also qualitatively address the case of the recently discovered Tcc+T_{cc}^+ state, within the isospin limit to avoid the complexity of the very close thresholds D0D+D^0D^{\ast +} and D+D0D^+D^{\ast 0}, which could mask the ingredients of the approach proposed in this work.

Keywords

Cite

@article{arxiv.2203.04864,
  title  = {Compositeness of S-wave weakly-bound states from next-to-leading order Weinberg's relations},
  author = {M. Albaladejo and J. Nieves},
  journal= {arXiv preprint arXiv:2203.04864},
  year   = {2022}
}

Comments

Reviewed version matching the published one