Proton charge radius extraction from electron scattering data using dispersively improved chiral effective field theory
Abstract
We extract the proton charge radius from the elastic form factor (FF) data using a novel theoretical framework combining chiral effective field theory and dispersion analysis. Complex analyticity in the momentum transfer correlates the behavior of the spacelike FF at finite with the derivative at . The FF calculated in the predictive theory contains the radius as a free parameter. We determine its value by comparing the predictions with a descriptive global fit of the spacelike FF data, taking into account the theoretical and experimental uncertainties. Our method allows us to use the finite- FF data for constraining the radius (up to 0.5 GeV and larger) and avoids the difficulties arising in methods relying on the extrapolation. We obtain a radius of 0.844(7) fm, consistent with the high-precision muonic hydrogen results.
Keywords
Cite
@article{arxiv.1809.06373,
title = {Proton charge radius extraction from electron scattering data using dispersively improved chiral effective field theory},
author = {J. M. Alarcón and D. W. Higinbotham and C. Weiss and Z. Ye},
journal= {arXiv preprint arXiv:1809.06373},
year = {2019}
}
Comments
8 pages, 5 figures