The $J/\psi$-nucleon interaction mechanism: A theoretical study based on scattering length
Abstract
The low-energy scattering is of significant importance for various reasons. It is deeply interconnected with the hidden-charm pentaquark states, provides insights into the role of gluons in nucleon structures, and is pertinent to the properties of in nuclear medium. The scattering can occur through two distinct mechanisms: the coupled-channel mechanism involving open-charm meson-baryon intermediate states and , and the soft-gluon exchange mechanism. In this study, we investigate the -wave scattering length arising from both mechanisms. Our findings indicate that both mechanisms lead to attractive interactions, yielding scattering lengths of fm for the coupled-channel mechanism and fm for the soft-gluon exchange mechanism, respectively. Notably, the soft-gluon exchange mechanism produces a scattering length that is at least one order of magnitude larger than that from the coupled-channel mechanism, indicating its predominance. These findings can be corroborated through lattice calculations and will enhance our understanding of scattering processes that violate the Okubo-Zweig-Iizuka rule.
Keywords
Cite
@article{arxiv.2503.00702,
title = {The $J/\psi$-nucleon interaction mechanism: A theoretical study based on scattering length},
author = {Bing Wu and Xiang-Kun Dong and Meng-Lin Du and Feng-Kun Guo and Bing-Song Zou},
journal= {arXiv preprint arXiv:2503.00702},
year = {2025}
}
Comments
Proceedings of the 11th International Workshop on Chiral Dynamics (CD2024)