Measurement of the Target-Normal Single-Spin Asymmetry in Quasielastic Scattering from the Reaction [superscript 3]He[superscript ↑](e,e')
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Author(s) • • • • • • • • •
Zhang, Y.-W.
Long, E.
Mihovilovic, M.
Jin, G.
Allada, K.
Anderson, B.
Annand, J. R. M.
Averett, T.
Ayerbe-Gayoso, C.
Boeglin, W.
Date Issued
October 2015
Journal
Physical Review Letters
Publisher
American Physical Society
Citation
Zhang, Y.-W., et al. "Measurement of the target-normal single-spin asymmetry in quasielastic scattering from the reaction [superscript 3]He[superscript ↑](e,e')." Phys. Rev. Lett. 115, 172502 (October 2015). © 2015 American Physical Society
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Final published version
Abstract
We report the first measurement of the target single-spin asymmetry, A[subscript y], in quasielastic scattering from the inclusive reaction [superscript 3]He[superscript ↑](e,e′) on a [superscript 3]He gas target polarized normal to the lepton scattering plane. Assuming time-reversal invariance, this asymmetry is strictly zero for one-photon exchange. A nonzero A[subscript y] can arise from the interference between the one- and two-photon exchange processes which is sensitive to the details of the substructure of the nucleon. An experiment recently completed at Jefferson Lab yielded asymmetries with high statistical precision at Q[superscript 2] =0.13, 0.46, and 0.97 GeV[superscript 2]. These measurements demonstrate, for the first time, that the [superscript 3]He asymmetry is clearly nonzero and negative at the 4σ–9σ level. Using measured proton-to-[superscript 3]He cross-section ratios and the effective polarization approximation, neutron asymmetries of -(1–3)% were obtained. The neutron asymmetry at high Q[superscript 2] is related to moments of the generalized parton distributions (GPDs). Our measured neutron asymmetry at Q[superscript 2] = 0.97 GeV[superscript 2] agrees well with a prediction based on two-photon exchange using a GPD model and thus provides a new, independent constraint on these distributions.
MIT Department
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Laboratory for Nuclear Science
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DOI of Published Version
https://doi.org/10.1103/PhysRevLett.115.172502