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Potential surfaces for O atom-polymer reactionsAb initio quantum chemistry methods are used to study the energetics of interactions of O atoms with organic compounds. Polyethylene (CH2)n has been chosen as the model system to study the interactions of O(3P) and O(1D) atoms with polymers. In particular, H abstraction is investigated and polyethylene is represented by a C3 (propane) oligomeric model. The gradient method, as implemented in the GRADSCF package of programs, is used to determine the geometries and energies of products and reactants. The saddle point, barrier geometry is determined by minimizing the squares of the gradients of the potential with respect to the internal coordinates. To correctly describe the change in bonding during the reaction at least a two configuration MCSCF (multiconfiguration self consistent field) or GVB (generalized valence bond) wave function has to be used. Basis sets include standard Pople and Dunning sets, however, increased with polarization functions and diffuse p functions on both the C and O atoms. The latter is important due to the O(-) character of the wave function at the saddle point and products. Normal modes and vibrational energy levels are given for the reactants, saddle points and products. Finally, quantitative energetics are obtained by implementing a small CAS (complete active space) approach followed by limited configuration interaction (CI) calculations. Comparisons are made with available experimental data.
Document ID
19870016768
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Laskowski, B. C.
(Analatom, Inc. San Jose, Calif., United States)
Jaffe, R. L.
(NASA Ames Research Center Moffett Field, CA, United States)
Date Acquired
September 5, 2013
Publication Date
June 1, 1987
Publication Information
Publication: Jet Propulsion Lab., Proceedings of the NASA Workshop on Atomic Oxygen Effects
Subject Category
Inorganic And Physical Chemistry
Accession Number
87N26201
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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