Kinetics of the H plus NCO reaction

被引:20
|
作者
Klippenstein, Stephen J. [1 ]
Harding, Lawrence B. [1 ]
机构
[1] Argonne Natl Lab, Chem Sci & Engn Div, Argonne, IL 60439 USA
关键词
NCO; H plus NCO; Ab initio; Transition state theory; MULTIREFERENCE PERTURBATION-THEORY; CORRELATED MOLECULAR CALCULATIONS; TRANSITION-STATE THEORY; GAUSSIAN-BASIS SETS; ISOCYANIC ACID; PHOTOINITIATED DECOMPOSITION; CONFIGURATION-INTERACTION; WAVE-FUNCTIONS; SHOCK-WAVES; HNCO;
D O I
10.1016/j.proci.2008.06.135
中图分类号
O414.1 [热力学];
学科分类号
摘要
Ab initio transition state theory (TST) based master equation simulations are used to predict the temperature and pressure dependence of the H + NCO reaction rate and product branching. The barrierless entrance channels to form singlet HNCO and NCOH are studied with variable reaction coordinate TST employing a potential energy surface obtained from mufti-reference configuration interaction ab initio calculations. The remaining channels, including reactions on the triplet surface, are studied with standard TST methods employing high level electronic structure results. The energy transfer parameters for the master equation simulations arise from a fit to the experimentally observed HNCO dissociation rate. The lowest energy threshold to formation of bimolecular products, (NH)-N-3 + CO, lies well below the reactants. The bottleneck for intersystem crossing, which precedes the formation of (NH)-N-3 + CO from the singlet adducts, becomes the dominant bottleneck for that channel at quite low energies relative to reactants. The effect of this bottleneck is studied with model calculations designed to reproduce detailed experimental observations of photolysis branching ratios. This bottleneck greatly reduces the flux from H + NCO to (NH)-N-3 + CO via the singlet adducts. As a result, stabilization and reaction on solely the triplet surface are significant components of the overall rate. The present predictions for the high pressure and collisionless limit rate coefficients are accurately reproduced over the 200-2500 K range by the expressions, 1.53 x 10(-5) T(-1.86)exp(-399/T) + 1.07 x 10(3)T(3.15)exp(-15219/T) and 5.62 x 10(-12)T(0.493)exp(148/T) cm(3) molecule(-1) s(-1), respectively, where T is in K. These predictions are in reasonably satisfactory agreement with the somewhat discordant experimental rate measurements. (C) 2009 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:149 / 155
页数:7
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