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arXiv:2604.04821·v2·High Energy Physics — Phenomenology

Study of the molecular Properties of the and States

Jing-Zhi Cao🇨🇳 · Huan-Yu Wei🇨🇳 · Jiao-Xue Yang🇨🇳 · Jian Sun🇨🇳 · Chu-Wen Xiao🇨🇳

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Abstract

In the present work, we investigate the molecular properties of the hidden charm pentaquark states and with a coupled channel framework that combines heavy quark spin symmetry and the local hidden gauge formalism. By solving the Bethe-Salpeter equation with the cutoff method, we obtain the pole trajectories, wave functions, and root-mean-square radii. For the hidden charm system, the full coupled channel interactions respecting the heavy quark spin symmetry are essential to generate the states, which significantly affect the poles' widths. The dominant bound channels are and , which couple strongly to the lower decay channels. In contrast, for the hidden charm strange system, the full heavy quark spin symmetry treatment is not necessary, where the splitting PB and VB sectors yield similar results. The main bound channels and couple strongly to and , respectively, but weakly to the lower decay channels, different from the hidden charm case. The trajectories of the pole widths for the loosely bound channels , , and exhibit distinct behaviors. Notably, all the primary bound channels have similar binding energies in the single channel interactions due to equally attractive potentials. Furthermore, we also calculate the wave functions and root-mean-square radii of the corresponding poles. The wave functions are localized within fm and vanish fast beyond fm. The root-mean-square radii, evaluated by two consistent methods, typically lie between and fm, comparable to the characteristic scale of molecular states. The root-mean-square radii depend on the pole trajectories and differ among the full coupled channel case, the split PB and VB sectors, and the single channel interactions.

Comments: Some results are updated and more comments added