Dispersive Corrections to the Born Approximation in Elastic Electron-Nucleus Scattering in the Intermediate Energy Regime
Abstract
Measurements of elastic electron scattering data within the past decade have highlighted two-photon exchange contributions as a necessary ingredient in theoretical calculations to precisely evaluate hydrogen elastic scattering cross sections. This correction can modify the cross section at the few percent level. In contrast, dispersive effects can cause significantly larger changes from the Born approximation. The purpose of this experiment is to extract the carbon-12 elastic cross section around the first diffraction minimum, where the Born term contributions to the cross section are small to maximize the sensitivity to dispersive effects. The analysis uses the LEDEX data from the high resolution Jefferson Lab Hall A spectrometers to extract the cross sections near the first diffraction minimum of 12C at beam energies of 362 MeV and 685 MeV. The results are in very good agreement with previous world data, although with less precision. The average deviation from a static nuclear charge distribution expected from linear and quadratic fits indicate a 30.6% contribution of dispersive effects to the cross section at 1 GeV. The magnitude of the dispersive effects near the first diffraction minimum of 12C has been confirmed to be large with a strong energy dependence and could account for a large fraction of the magnitude for the observed quenching of the longitudinal nuclear response. These effects could also be important for nuclei radii extracted from parity-violating asymmetries measured near a diffraction minimum.
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Cite
@article{arxiv.1805.12441,
title = {Dispersive Corrections to the Born Approximation in Elastic Electron-Nucleus Scattering in the Intermediate Energy Regime},
author = {P. Gueye and A. A. Kabir J. Glister and B. W. Lee and R. Gilman and D. W. Higinbotham and E. Piasetzky and G. Ron and A. J. Sarty and S. Strauch and A. Adeyemi and K. Allada and W. Armstrong and J. Arrington and H. Arenhovel and A. Beck and F. Benmokhtar and B. L. Berman and W. Boeglin and E. Brash and A. Camsonne and J. Calarco and J. P. Chen and S. Choi and E. Chudakov and L. Coman and B. Craver and F. Cusanno and J. Dumas and C. Dutta and R. Feuerbach and A. Freyberger and S. Frullani and F. Garibaldi and J. -O. Hansen and T. Holmstrom and C. E. Hyde and H. Ibrahim and Y. Ilieva and X. Jiang and M. K. Jones and A. T. Katramatou and A. Kelleher and E. Khrosinkova and E. Kuchina and G. Kumbartzki and J. J. LeRose and R. Lindgren and P. Markowitz and S. May-Tal Beck and E. McCullough and D. Meekins and M. Meziane and Z. -E. Meziani and R. Michaels and B. Moffit and B. E. Norum and G. G. Petratos and Y. Oh and M. Olson and M. Paolone and K. Paschke and C. F. Perdrisat and M. Potokar and R. Pomatsalyuk and I. Pomerantz and A. Puckett and V. Punjabi and X. Qian and Y. Qiang and R. D. Ransome and M. Reyhan and J. Roche and Y. Rousseau and B. Sawatzky and E. Schulte and M. Schwamb and M. Shabestari and A. Shahinyan and R. Shneor and S. Sirca and K. Slifer and P. Solvignon and J. Song and R. Sparks and R. Subedi and G. M. Urciuoli and K. Wang and B. Wojtsekhowski and X. Yan and H. Yao and X. Zhan and X. Zhu},
journal= {arXiv preprint arXiv:1805.12441},
year = {2020}
}
Comments
14 pages, 10 figures