Spatial measure of reaction size in proton scattering
Masashi Tomita, M. Iwasaki, R. Otani, M. Ito
Abstract
Masashi Tomita, M. Iwasaki, R. Otani, M. Ito
Abstract
We introduce a scattering radius, which characterizes a spatial size of the scattering area, from partial wave decompositions of a cross section for a nucleon-nucleus scattering. The coupled-channel calculations of the p + 12C scattering are performed in the range of Elab = 29.95 MeV to 65 MeV, and the scattering radii for the elastic scattering and the various inelastic channels, which involve the rotational or vibrational excitations and the 3? excitations in 12C, are derived from the partial wave decomposition. We found that the scattering radii for the inelastic channels with a well developed 3 a structure are strongly enhanced in comparison to the scattering radius for the elastic and collective channels. This enhancement of the scattering radius for the 3? channel strongly suggests that the scattering radius is sensitive to a size of the intrinsic structure of the finally excited state in the scattering process.
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We introduce a scattering radius, which characterizes a spatial size of the scattering area, from partial wave decompositions of a cross section for a nucleon-nucleus scattering. The coupled-channel calculations of the p + 12C scattering are performed in the range of Elab = 29.95 MeV to 65 MeV, and the scattering radii for the elastic scattering and the various inelastic channels, which involve the rotational or vibrational excitations and the 3? excitations in 12C, are derived from the partial wave decomposition. We found that the scattering radii for the inelastic channels with a well developed 3 a structure are strongly enhanced in comparison to the scattering radius for the elastic and collective channels. This enhancement of the scattering radius for the 3? channel strongly suggests that the scattering radius is sensitive to a size of the intrinsic structure of the finally excited state in the scattering process.
Key concepts: Scattering, Scattering length, Inelastic scattering, Physics, Mott scattering, RADIUS, Scattering theory, Small-angle neutron scattering