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      Effects of spinor distortion and density-dependent form factors upon \(^{16}O(\vec{e},e'\vec{p})\)

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          Abstract

          We propose an effective current operator for nucleon electromagnetic knockout that incorporates spinor distortion and density-dependent nucleon form factors using an effective momentum approximation. This method can be used in a coordinate-space approach with either relativistic or nonrelativistic optical potentials and overlap functions. We studied these effects for the \(^{16}O(\vec{e},e' \vec{p})\) reaction at Q^2 = 0.8 (GeV/c)^2. Spinor distortion substantially enhances the left-right asymmetry while reducing the ratio between sideways and longitudinal recoil polarization for p-shell knockout by about 5% for modest missing momenta. We also find that the density dependence of nucleon form factors suggested by a quark-meson coupling model reduces the polarization ratio further. Much larger effects are obtained for the s-shell than for p-shell. However, both effects are subject to much larger Gordon ambiguities than comparable nonrelativistic calculations.

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          Effective nucleon-nucleon interaction for scattering at intermediate energies

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            Polarization transfer in elastic electron scattering from nucleons and deuterons

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              Inelastic Electron-Nucleus Scattering and Nucleon-Nucleon Correlations

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                Author and article information

                Journal
                11 May 1999
                Article
                10.1103/PhysRevC.60.044609
                nucl-th/9905024
                24b09f9a-9927-42f8-bd1b-84455088ba79
                History
                Custom metadata
                Phys.Rev. C60 (1999) 044609
                20 pages, including 8 figures. Intended for Phys. Rev. C
                nucl-th

                Nuclear physics
                Nuclear physics

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