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Accurate nucleon electromagnetic form factors from dispersively improved chiral effective field theory

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arxiv 1803.09748 v1 pith:ZBBB2OGD submitted 2018-03-26 hep-ph hep-latnucl-ex

classification hep-phhep-latnucl-ex
keywords chiraleffectivedataelectromagneticfactorsfieldformisovector
verification ladder T0 review T1 audit T2 compute T3 formal

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We present a theoretical parametrization of the nucleon electromagnetic form factors (FFs) based on a combination of chiral effective field theory and dispersion analysis. The isovector spectral functions on the two-pion cut are computed using elastic unitarity, chiral pion-nucleon amplitudes, and timelike pion FF data. Higher-mass isovector and isoscalar t-channel states are described by effective poles, whose strength is fixed by sum rules (charges, radii). Excellent agreement with the spacelike proton and neutron FF data is achieved up to Q^2 \sim 1 GeV^2. Our parametrization provides proper analyticity and theoretical uncertainty estimates and can be used for low-Q^2 FF studies and proton radius extraction.

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  1. Dispersive Determination of Nucleon Gravitational Form Factors

    hep-ph 2024-11 conditional novelty 6.0 of 10

    Using unitarity and dispersion relations, the paper extracts a nucleon D-term of -3.38 and a scalar trace density radius of 0.97 fm at the physical pion mass.

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