Neutron spin structure with polarized deuterons and spectator proton tagging at EIC
Abstract
The neutron's deep-inelastic structure functions provide essential information for the flavor separation of the nucleon parton densities, the nucleon spin decomposition, and precision studies of QCD phenomena in the flavor-singlet and nonsinglet sectors. Traditional inclusive measurements on nuclear targets are limited by dilution from scattering on protons, Fermi motion and binding effects, final-state interactions, and nuclear shadowing at x << 0.1. An Electron-Ion Collider (EIC) would enable next-generation measurements of neutron structure with polarized deuteron beams and detection of forward-moving spectator protons over a wide range of recoil momenta (0 < p_R < several 100 MeV in the nucleus rest frame). The free neutron structure functions could be obtained by extrapolating the measured recoil momentum distributions to the on-shell point. The method eliminates nuclear modifications and can be applied to polarized scattering, as well as to semi-inclusive and exclusive final states. We review the prospects for neutron structure measurements with spectator tagging at EIC, the status of R&D efforts, and the accelerator and detector requirements.
Keywords
Cite
@article{arxiv.1409.5768,
title = {Neutron spin structure with polarized deuterons and spectator proton tagging at EIC},
author = {W. Cosyn and V. Guzey and D. W. Higinbotham and C. Hyde and S. Kuhn and P. Nadel-Turonski and K. Park and M. Sargsian and M. Strikman and C. Weiss},
journal= {arXiv preprint arXiv:1409.5768},
year = {2014}
}
Comments
11 pages, 3 figures. To appear in proceedings of Tensor Polarized Solid Target Workshop, Jefferson Lab, March 10-12, 2014