Electron-impact ionization cross sections of atmospheric molecules
Author(s) -
Y.-K. Kim,
Won Hwang,
Nikolaus Weinberger,
M. A. Ali,
M. E. Rudd
Publication year - 1997
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.473186
Subject(s) - ionization , adiabatic process , electron ionization , cross section (physics) , atomic physics , binary number , electron , molecule , range (aeronautics) , physics , chemistry , materials science , nuclear physics , ion , quantum mechanics , arithmetic , mathematics , composite material
A theoretical model for electron-impact total ionization cross sections, which has been found to be reliable for a wide range of molecules, is applied to molecules of interest to atmospheric science. The new theory, the binary-encounter-Bethe (BEB) model, combines the binary-encounter theory and the Bethe theory for electron-impact ionization, and uses simple theoretical data for the ground state of the target molecule, which are readily available from molecular structure codes. Total ionization cross sections of 11 molecules, CS, CS2, COS, CH4, H2S, NH3, NO2, N2O, O3, S2, and SO2, are presented for incident electron energies from threshold to 1 keV with an average accuracy of 15% or better at the cross section peak. We also found that the use of vertical ionization potentials (IPs) rather than adiabatic IPs for the lowest IPs significantly improves BEB cross sections between the threshold and cross section peak for molecules whose adiabatic and vertical IPs are different by ∼1 eV or more (CH4 and NH3). T...
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