Direct ab initio dynamics studies of N + H2<-->NH + H reaction

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Publication Type Journal Article
School or College College of Science
Department Chemistry
Program Center for the Simulation of Accidental Fires and Explosions (C-SAFE)
Creator Truong, Thanh
Other Author Zhang, Shaowen
Title Direct ab initio dynamics studies of N + H2<-->NH + H reaction
Date 2000
Description Kinetics of the N+H2<-->NH+H reaction have been studied using a direct ab initio dynamics method. Potential energy surface for low electronic states have been explored at the QCISD/ cc-pVDZ level of theory. We found the ground-state reaction is N(4S)+H2-->NH(3Σ-)+H. Thermal rate constants for this reaction were calculated using the microcanonical variational transition state theory. Reaction path information was calculated at the QCISD/cc-pVDZ level of theory. Energies along the minimum energy path (MEP) were then refined at the QCISD(TQ)/ cc-pVTZ level of theory. The forward and reverse barriers of the ground-state reaction are predicted to be 29.60 and 0.53 kcal/mol, respectively. The calculated rate constants for both forward and reverse reactions are in good agreement with available experimental data. They can be expressed as k(T)52.3331014 exp(230.83 (kcal/mol)/RT) cm3 mols-1 s-1 for the forward reaction and k(T) 55.553108T1.44 exp(20.78(kcal/mol)/RT) cm3 mol-1 s-1 for the reverse reaction in the temperature range 400-2500 K.
Type Text
Publisher American Institute of Physics (AIP)
Journal Title The Journal of Chemical Physics
Volume 113
Issue 15
First Page 6149
Last Page 6153
DOI 10.1063/1.1308544
citatation_issn 219606
Subject Ab initio dynamics; Potential energy surfaces; Minimum energy path; Ground-state reaction; Rate constants
Subject LCSH Molecular dynamics; Nitrogen compounds; Chemical kinetics
Language eng
Bibliographic Citation Zhang, S., & Truong, T. (2000). Direct ab initio dynamics studies of N + H2<-->NH + H reaction. Journal of Chemical Physics, 113(15), 6149-53.
Rights Management (c)American Institute of Physics. The following article appeared in Zhang, S., & Truong, T., Journal of Chemical Physics, 113(15), 2000 and may be found at http://dx.doi.org/10.1063/1.1308544
Format Medium application/pdf
Format Extent 70,923 bytes
Identifier ir-main,7080
ARK ark:/87278/s64b3jv5
Setname ir_uspace
ID 706159
Reference URL https://collections.lib.utah.edu/ark:/87278/s64b3jv5
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