arXiv:2404.16575·v2·High Energy Physics — Phenomenology
Uncovering the mystery of with the coupled-channel dynamics
Jun-Zhang Wang🇨🇳 · Zi-Yang Lin🇨🇳 · Yan-Ke Chen🇨🇳 · Lu Meng🇩🇪 · Shi-Lin Zhu🇨🇳
Abstract
The , as the first and the most crucial member in the exotic charmoniumlike family, has been studied for a long time. However, its dynamical origin, whether stemming from a hadronic molecule or the first excited -wave charmonium , remains controversial. In this Letter, we demonstrate that the definitely does not result from the mass shift of the higher bare resonance pole in the coupled-channel dynamics involving a short-distance core and the long-distance channels. Instead, it originates from either the molecular pole or the shadow pole associated with the anti-resonance of the -wave charmonium, depending on the weak or strong coupling mode, respectively. To differentiate these origins and fully exploit the nature of , we conduct a comprehensive analysis in a couple-channel dynamics framework, including the isospin violation, the three-body effect, the dynamical width of , and non-open-charm decays of the bare . Our findings highlight the pivotal role of the coupled-channel dynamics in explaining the disparity between the pole widths of and , while also predicting a new resonance with around 4.0 GeV. By matching the newly observed by the LHCb Collaboration to our predicted resonance, we conclude that the most likely originates from the pole with a confidence level exceeding .
Comments: 8+8 pages, 3+5 figures, added new results and discussion: the successful prediction for new charmoniumlike chi_c1(4010) and its implication for uncovering the pole origin of X(3872), accepted for publication as a Letter in Phys. Rev. D