Global superscaling analysis of quasielastic electron scattering with relativistic effective mass
J.E. Amaro, V.L. Martinez-Consentino, E. Ruiz Arriola, I. Ruiz Simo

TL;DR
This paper introduces a superscaling model with relativistic effective mass to analyze quasielastic electron scattering data across various nuclei, providing accurate predictions and uncertainty estimates for nuclear responses relevant to neutrino experiments.
Contribution
The paper develops the SuSAM* model incorporating relativistic effective mass and compares multiple data extraction methods, advancing the understanding of quasielastic scattering across the nuclear chart.
Findings
Over 9000 data points fit within the model's quasielastic bands.
Model successfully predicts cross sections for a wide range of nuclei.
Provides uncertainty estimates useful for neutrino physics applications.
Abstract
We present a global analysis of the inclusive quasielastic electron scattering data with a superscaling approach with relativistic effective mass. The SuSAM* model exploits the approximation of factorization of the scaling function out of the cross section under quasifree conditions. Our approach is based on the relativistic mean field theory of nuclear matter where a relativistic effective mass for the nucleon encodes the dynamics of nucleons moving in presence of scalar and vector potentials. Both the scaling variable and the single nucleon cross sections include the effective mass as a parameter to be fitted to the data alongside the Fermi momentum . Several methods to extract the scaling function and its uncertainty from the data are proposed and compared. The model predictions for the quasielastic cross section and the theoretical error bands are…
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