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Shape resonances in modified effective range theory for electron-molecule collisions

2007/08/22 by Zbigniew Idziaszek, Grzegorz P. Karwasz, Idziaszek, Zbigniew +2 · 1 citation
Chemistry · Physics and Astronomy · #Atomic and Molecular Physics #Cold Atom Physics and Bose-Einstein Condensates #Spectroscopy and Laser Applications #physics.atom-ph

paper · pdf · doi:10.48550/arxiv.0708.2991

RevTeX, 10 pages, 5 figures; revised version

arxiv created 2008/06/02 · arxiv updated 2009/12/01

Abstract

We develop a simple model of shape resonances in electron-molecule collisions that is based on the modified effective-range expansion and analytical solutions of the Schrodinger equation for the long-range part of the interaction potential. We apply our model to electron scattering on N2 and CO2. The parameters of the effective-range expansion (i.e. the scattering length and the effective range) are determined from experimental, integral elastic cross sections in the 0.1 - 1.0 eV energy range. For both molecular targets our treatment predicts shape resonances that appear slightly higher than experimentally known resonances in total cross sections. Agreement with the experiment can be improved by assuming the position of the resonance in a given partial wave. Influence of quadrupole potential on resonances is also discussed: it can be disregarded for N2 but gets significant for CO2. In conclusion, our model developed within the effective range formalism reproduces well both the very low-energy behavior of the integral cross section as well as the presence of resonances in the few eV range.

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