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Note on the electromagnetic radius of proton

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arxiv 2308.14950 v1 pith:BXQ73UQU submitted 2023-08-29 hep-ph nucl-exnucl-thphysics.pop-ph

classification hep-phnucl-exnucl-thphysics.pop-ph
keywords protondatadifferentfactorformmodelsradiistructure
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We have analyzed the proton form factor data by using a number of phenomenological parameterizations (models) and extracting the proton electric and magnetic radii. To this end we performed a global fit to all available form factor data, with the virtual photon momentum squared $Q^2$ from $0.0002$ to nearly 10 GeV$^2$ for electric form factor and from $0.015$ to 31 GeV$^2$ for magnetic one. Special attention was given to the small structure shown by the form factor data near $Q^2 = 0.2$ GeV$^2$. It was found that different models yield different structures with different numbers of minimum at this kinematics. Since the slope of form factor in the limit of $Q^2\to 0$ is influenced by this structure, the extracted proton radii are consequently different for different models. Our finding recommends that future experiments should focus on this kinematics instead of low $Q^2$. Experimental data with accuracies comparable to those of the latest data at low $Q^2$ would clearly help to clarify the effect of this structure on the proton charge radius. Interestingly, most of the extracted proton charge radii were found to be closer to the value obtained from the muonic hydrogen atom spectroscopy.

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  1. New Isobar Models for $K^+\Lambda$ Electroproduction

    hep-ph 2025-07 conditional novelty 5.0 of 10

    Two isobar models with high-spin baryon resonances and modified electromagnetic form factors fit CLAS K+Lambda electroproduction data with chi-square per point of 2.16.

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