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Helium double photoionization cross

Fig. 22. Calculations of the double photoionization cross section a for helium by Carter and Kelly, ref. 107. Curves labelled LOL(LOV) are lowest order length (velocity) results for the kskp channel. Curves labelled L(V) are length (velocity) results containing higher-order corrections for both kskp and kpkd channels. Curve labelled BJ is dipole-velocity result from Byron and Joachain, ref. 106. Fig. 22. Calculations of the double photoionization cross section a for helium by Carter and Kelly, ref. 107. Curves labelled LOL(LOV) are lowest order length (velocity) results for the kskp channel. Curves labelled L(V) are length (velocity) results containing higher-order corrections for both kskp and kpkd channels. Curve labelled BJ is dipole-velocity result from Byron and Joachain, ref. 106.
Fig. 23. Double photoionization cross section of helium. Length (solid curve) and velocity (dashed curve) calculated by Carter and Kelly, ref. 107. Experimental data (dots) from Bizau et al., ref. 120. Fig. 23. Double photoionization cross section of helium. Length (solid curve) and velocity (dashed curve) calculated by Carter and Kelly, ref. 107. Experimental data (dots) from Bizau et al., ref. 120.
Starting in a manner similar to the treatment of single photoionization described in Section 2.1, double photoionization in helium caused by linearly polarized light will be treated first with uncorrelated wavefunctions. A calculation of the differential cross section for double photoionization then requires the evaluation... [Pg.159]

Figure 4.43 Energy- and angle-resolved triple-differential cross section for direct double photoionization in helium at 99 eV photon energy. The diagram shows the polar plot of relative intensity values for one electron (ea) kept at a fixed position while the angle of the coincident electron (eb) is varied. The data refer to electron emission in a plane perpendicular to the photon beam direction for partially linearly polarized light (Stokes parameter = 0.554) and for equal energy sharing of the excess energy, i.e., a = b = 10 eV. Experimental data are given by points with error bars, theoretical data by the solid curve. Figure 4.43 Energy- and angle-resolved triple-differential cross section for direct double photoionization in helium at 99 eV photon energy. The diagram shows the polar plot of relative intensity values for one electron (ea) kept at a fixed position while the angle of the coincident electron (eb) is varied. The data refer to electron emission in a plane perpendicular to the photon beam direction for partially linearly polarized light (Stokes parameter = 0.554) and for equal energy sharing of the excess energy, i.e., a = b = 10 eV. Experimental data are given by points with error bars, theoretical data by the solid curve.
The matrix element Mfi derived so far for the differential cross section of double photoionization in helium is based on uncorrelated wavefunctions in the initial and final states. For simplicity the initial state will be left uncorrelated, but electron correlations in the final state will now be included. The significance of final state correlations can be inferred from Fig. 4.43 without these correlations an intensity... [Pg.162]


See other pages where Helium double photoionization cross is mentioned: [Pg.257]    [Pg.257]    [Pg.151]    [Pg.154]    [Pg.156]    [Pg.158]    [Pg.161]    [Pg.164]    [Pg.165]    [Pg.165]    [Pg.154]    [Pg.156]    [Pg.158]    [Pg.161]    [Pg.164]    [Pg.165]    [Pg.107]   


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