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Polarized electron-deuteron deep-inelastic scattering with spectator nucleon tagging

2020/06/04 by Wim Cosyn, W. Cosyn, C. Weiss · 25 citations
Physics and Astronomy · #Deep inelastic scattering #Deuterium #Electron #Electron scattering #High-Energy Particle Collisions Research #Inelastic scattering #Mott scattering #Neutron #Neutron scattering #Nuclear physics #Nucleon #Optics #Particle physics #Particle physics theoretical and experimental studies #Physics #Quantum Chromodynamics and Particle Interactions #Quasielastic scattering #Scattering #Small-angle neutron scattering #X-ray Raman scattering #hep-ph #nucl-ex #nucl-th

paper · pdf · doi:10.1103/physrevc.102.065204

published in Physical Review C 102(6) (American Institute of Physics) · 52 pages, 19 figures

arxiv created 2020/06/04 · openalex publication_date 2020/12/16 · arxiv updated 2021/01/04 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

Background: Deep-inelastic scattering (DIS) on the polarized deuteron with detection of a proton in the nuclear breakup region (spectator tagging) represents a unique method for extracting the neutron spin structure functions and studying nuclear modifications. The tagged proton momentum controls the nuclear configuration during the DIS process and enables a differential analysis of nuclear effects. Such measurements could be performed with the future electron-ion collider (EIC) and forward proton detectors if deuteron beam polarization could be achieved.Purpose: Develop a theoretical framework for polarized deuteron DIS with spectator tagging. Formulate practical procedures for neutron spin structure extraction.Methods: A covariant spin density matrix formalism is used to describe general deuteron polarization in collider experiments (vector/tensor, pure/mixed). Light-front (LF) quantum mechanics is employed to factorize nuclear and nucleonic structure in the DIS process. A four-dimensional representation of LF spin structure is used to construct the polarized deuteron LF wave function and efficiently evaluate the spin sums. Free neutron structure is extracted using the impulse approximation and analyticity in the tagged proton momentum (pole extrapolation).Results: General expressions of the polarized tagged DIS observables in collider experiments are presented. The polarized deuteron LF spectral function and nucleon momentum distributions are characterized in analytic and numerical form. Practical procedures for neutron spin structure extraction from the tagged deuteron spin asymmetries are proposed.Conclusions: Spectator tagging provides new tools for precise neutron spin structure measurements. D-wave depolarization and nuclear binding effects can be eliminated through the tagged proton momentum dependence. The methods can be extended to tensor-polarized observables, spin-orbit effects, and diffractive processes.

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