## Abstract The dual‐level direct dynamics approach is employed to study the dynamics of the CH~3~OCH~3~ + H (R1) and CH~3~OCH~3~ + CH~3~ (R2) reactions. Low‐level calculations of the potential energy surface are carried out at the MP2/6‐311+G(d,p) level of theory. High‐level energetic information
Dual-level direct dynamics studies for the reactions of OH radical with bromine-substituted ethanes
✍ Scribed by Li Wang; Jing-yao Liu; Hong Gao; Su-qin Wan; Ze-sheng Li
- Publisher
- John Wiley and Sons
- Year
- 2009
- Tongue
- English
- Weight
- 184 KB
- Volume
- 30
- Category
- Article
- ISSN
- 0192-8651
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✦ Synopsis
Abstract
The dynamic properties of the multichannel hydrogen abstraction reactions of CH~3~CH~2~Br + OH → products and CH~3~CHBr~2~ + OH → products are studied by dual‐level direct dynamics method. For each reaction, three reaction channels, one for α‐hydrogen abstraction and two for β‐hydrogen abstractions, have been identified. The minimum energy paths (MEPs) of both the reactions are calculated at the Becke's half‐and‐half (BH&H)‐Lee‐Yang‐Parr (LYP)/6‐311G(d, p) level and the energy profiles along the MEPs are further refined with interpolated single‐point energies (ISPE) method at the G2M(RCC5)//BH&H‐LYP level. There are complexes with energies less than those of the reactants or products located at the entrance or exit channels, which indicates that the reactions may proceed via an indirect mechanism. By canonical variational transition‐state theory (CVT) the rate constants are calculated incorporating the small‐curvature tunneling (SCT) correction in the temperature range of 220–2000 K. The agreement of the rate constants with available experimental values for two reactions is good in the measured temperature range. The calculated results show that α‐hydrogen abstraction channel is the major reaction pathway in the lower temperature for two reactions, while the contribution of β‐hydrogen abstraction will increase with the increase in temperature. © 2008 Wiley Periodicals, Inc. J Comput Chem 2009
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## Abstract By means of the dual‐level direct dynamics method, the mechanisms of the reactions, CH~3~CF~2~Cl + OH → products (R1) and CH~3~CFCl~2~ + OH → products (R2), are studied over a wide temperature range 200–2000 K. The optimized geometries and frequencies of the stationary points are calcul
The hydrogen abstract reactions of OH radicals with HOF (R1), HOCl (R2), and HOBr (R3) have been studied systematically by a dual-level direct-dynamics method. The geometries and frequencies of all the stationary points are optimized at the MP2/6-311+G(2d, 2p) level of theory. A hydrogen-bonded comp
## Abstract The mechanisms of the reactions: CH~3~CFCl~2~ + Cl (R1) and CH~3~CF~2~Cl + Cl (R2) are studied over a wide temperature range (200–3000 K) using the dual‐level direct dynamics method. The minimum energy path calculation is carried out at the MP2/6‐311G(d,p) and B3LYP/6‐311G(d,p) levels,