Resonance charge transfer, transport cross sections, and collision integrals for N+(3P )–N(4S) and O+(4S)–O(3P ) interactions
- 1 November 1991
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 95 (9) , 6429-6439
- https://doi.org/10.1063/1.461563
Abstract
N+2 and O+2 potential energy curves have been constructed by combining measured data with the results from electronic structure calculations. These potential curves have been employed to determine accurate charge exchange cross sections, transport cross sections, and collision integrals for ground state N+ –N and O+ –O interactions. The cross sections have been calculated from a semiclassical approximation to the scattering using our computer code that fits a spline curve through the discrete potential data and incorporates the proper long‐range behavior of the interaction forces. The charge exchange cross sections are slightly smaller than the values we reported previously using an asymptotic approximation and also agree well with the results of beam measurements at high energies. The collision integrals are tabulated for a broad range of temperatures 250–100 000 K and are intended to reduce the uncertainty in the values of the transport properties of nonequilibrium air, particularly at high temperatures.Keywords
This publication has 18 references indexed in Scilit:
- Collision integrals and high temperature transport properties for N-N, O-O, and N-OJournal of Thermophysics and Heat Transfer, 1990
- -N long-range interaction energies and resonance charge exchangePhysical Review A, 1985
- N2+ bound quartet and sextet state potential energy curvesJournal of Quantitative Spectroscopy and Radiative Transfer, 1985
- Comparison of quantum and semiclassical time delay resonance energies and widths: the effect of nearby inner turning pointsMolecular Physics, 1982
- The spectrum of molecular nitrogenJournal of Physical and Chemical Reference Data, 1977
- Internuclear potential for the B state of N+2Physics Letters A, 1975
- Semiclassical Treatment of Multiple Turning-Point Problems—Phase Shifts and EigenvaluesThe Journal of Chemical Physics, 1968
- On the semi-classical description of molecular orbiting collisionsMolecular Physics, 1968
- Quantum effects near a barrier maximumAnnals of Physics, 1959
- Diffusion and excitation transfer of metastable helium in normal gaseous heliumProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1952