English

Defining the Proton Radius: a Unified Treatment

Nuclear Theory 2019-03-13 v2 High Energy Physics - Phenomenology Nuclear Experiment Atomic Physics

Abstract

Background: There is significant current interest in knowing the value of the proton radius and also its proper definition. Purpose: Combine the disparate literatures of hydrogen spectroscopy and diverse modern parton distributions to show that the quantity rp26GE(0)r_p^2\equiv -6 G_E'(0) is the relativistically proper definition that originates from the separate bodies of work. Methods: Use perturbation theory, light-front dynamics and elementary techniques to find relativistically correct definitions of the proton radius and charge density. Results: It is found that the very same proton radius is accessed by measurements of hydrogen spectroscopy and elastic lepton scattering. The derivation of the mean-square radius as a moment of a spherically symmetric three-dimensional density is shown to be incorrect. A relativistically-correct, two-dimensional charge density is related to the diverse modern literature of various parton distributions. Relativistically invariant moments thereof are derived in a new moment expansion, the RME.

Keywords

Cite

@article{arxiv.1812.02714,
  title  = {Defining the Proton Radius: a Unified Treatment},
  author = {Gerald A. Miller},
  journal= {arXiv preprint arXiv:1812.02714},
  year   = {2019}
}

Comments

18 pages, two figures. Replacement involves improving the language and adding a reference