Abstract
We present a combined experimental and theoretical study for electron-impact ionization of carbon dioxide (CO2) for the projectile energy E 0 = 100 eV. Experimental triple-differential cross sections (TDCS) are obtained using a multi-particle momentum spectrometer (reaction microscope). For projectile scattering angles between -5° and -20° a large part of the full solid angle is covered for the slow ejected electron with energies between 5 and 15 eV. The experimental data are measured for the ionization of the three outer valence molecular orbitals 1π g, 1π u, and 3σ u which lead to a non-dissociating ion. The measured TDCS summed over all three orbitals are internormalized across the scattering angles and ejected electron energies. They are compared to the theoretical results from the multi-center distorted wave (MCDW) approximation, and from the MCDW-WM approximation which includes post-collision interaction using the Ward-Macek factor (WM). Reasonable good agreement is found between the experiment and the MCDW-WM calculations for the angular dependence and the relative magnitude of the cross sections in the coplanar plane, while for the perpendicular and full perpendicular planes larger discrepancies exist. Since post-collision interaction is not considered the MCDW method shows strong discrepancies with experiment for small mutual angles of the two outgoing electrons in the final state.
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CITATION STYLE
Hossen, K., Ren, X., Wang, E., Gong, M., Li, X., Zhang, S. B., … Dorn, A. (2018). Triple-differential cross sections for single ionization of CO2 by 100 eV electron impact. Journal of Physics B: Atomic, Molecular and Optical Physics, 51(21). https://doi.org/10.1088/1361-6455/aae0ab
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