A b i n i t i o treatment of electronically inelastic K+H collisions using a direct integration method for the solution of the coupled-channel scattering equations in electronically adiabatic representations
- 1 January 1981
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 74 (1) , 412-424
- https://doi.org/10.1063/1.440847
Abstract
We calculate the adiabatic potential energy curves and nonadiabatic first-derivative couplings for the X, A, and C 1Σ+ states of KH by an ab initio one-electron pseudopotential formalism. The splitting of the X and A curves at the avoided crossing is in good agreement with experiment. The ab initio results are used to calculate the electronically inelastic transition probabilities and cross sections for K+H collisions at low energies by R matrix propagation in the adiabatic representation with exponential sector transformations. Since this method has never been applied before, we made an extensive study of its convergence properties and efficiency. We found it to be a convenient, accurate, and efficient method. The cross sections are changed by about a factor of two when the potential curves are changed by a different treatment of the KH+ core, but only by about 1% when the assumptions about the nonadiabatic second-derivative coupling terms are altered. Our estimate of the 42P→ 42S quenching cross section at 0.022 eV relative translational energy is 2–4×10−4 a20. This increases to 8–10×10−4 a20 by 1.1 eV. The emphasis in this article is on testing and evaluating the new method for solving the scattering problem rather than on the cross sections themselves.Keywords
This publication has 43 references indexed in Scilit:
- Adiabatic representation in the three-body problem with the Coulomb interaction. II. The effective two-level approximationJournal of Physics B: Atomic and Molecular Physics, 1980
- R-matrix propagation methods in inelastic and reactive collisionsComputer Physics Communications, 1979
- Detailed study of the interaction of covalent and ionic states in collisions of sodium and potassium with atomic hydrogenThe Journal of Physical Chemistry, 1978
- Numerical comparison between electronically adiabatic and diabatic representations for collinear atom–diatom collisionsThe Journal of Chemical Physics, 1975
- Impact-Parameter Theory Defined as a Constant-Collision-Velocity Semiclassical Limit of a Complete Quantum-Scattering PicturePhysical Review A, 1973
- Calculation of Rotational and Vibrational Transitions for the Collision of an Atom with a Rotating Vibrating Diatomic OscillatorThe Journal of Chemical Physics, 1972
- Rotationally Induced Transitions in Atomic CollisionsPhysical Review A, 1971
- Two-State Stueckelberg-Landau-Zener Theory Applied to Oscillatory Inelastic Total Cross SectionsPhysical Review A, 1970
- Electron Excitation Cross Section of theTransition of SodiumPhysical Review B, 1965
- Inelastic Heavy Particle Collisions involving the Crossing of Potential Energy Curves IV. Ionic RecombinationProceedings of the Physical Society. Section A, 1956