A refined quark+diquark Faddeev calculation, calibrated to three-body results, reproduces nucleon elastic form factors and predicts zeros in G_E^p/G_M^p and the d-quark Dirac form factor.
Functional methods for hadron spectroscopy
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abstract
We summarize recent results for four-quark states with hidden and open flavor obtained from a four-quark Bethe-Salpeter/Faddeev-Yakubowsky equation. The approach dynamically predicts the leading internal two-body clusters such as meson-meson, hadroquarkonium or diquark-antidiquark components. For hidden-flavor states, the meson-meson or hadroquarkonium configurations are dominant, while the diquark contributions are small. For open-flavor states, the situation is different and depends on the quark content: The $T_{bb}^-$ is a mixture of various components, where the diquark-antidiquark components are dominant, whereas the $T_{cc}^+$ is practically entirely dominated by $DD^\ast$ due to its proximity to the threshold. We also provide details on the analytic continuations and extrapolations to extract states above thresholds.
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Quark + Diquark Description of Nucleon Elastic Electromagnetic Form Factors
A refined quark+diquark Faddeev calculation, calibrated to three-body results, reproduces nucleon elastic form factors and predicts zeros in G_E^p/G_M^p and the d-quark Dirac form factor.