Analytical potential energy surface for the NH3+H↔NH2+H2 reaction: Application of variational transition-state theory and analysis of the equilibrium constants and kinetic isotope effects using curvilinear and rectilinear coordinates
- 8 March 1997
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 106 (10) , 4013-4021
- https://doi.org/10.1063/1.473119
Abstract
The potential energy surface (PES) for the gas-phase NH3+H↔NH2+H2 reaction is constructed with suitable functional forms to represent the stretching and bending modes, and using as calibration criterion the reactant and product experimental properties and the ab initio saddle point properties. This surface is then used to calculate rate constants with variational transition-state theory over the temperature range 300–2000 K. While the forward rate constants agree with experimental results, the reverse ones are lower by factors of between 4 and 6. Since the same PES is used and these rates are related by detailed balance, this disagreement could indicate an uncertainty in the few available experimental studies for the reverse reaction. We also provide a detailed analysis of the equilibrium constants and of the kinetic isotope effects and compare the results of this analytical PES with earlier ab initio reaction-path calculations. Finally, for the vibrational frequency calculations, we analyze the consequences of the choice of different coordinate systems (curvilinear or rectilinear) on various kinetic magnitudes.Keywords
This publication has 36 references indexed in Scilit:
- Recalibration of Two Earlier Potential Energy Surfaces for the CH4 + H → CH3 + H2 Reaction. Application of Variational Transition-State Theory and Analysis of the Kinetic Isotope Effects Using Rectilinear and Curvilinear CoordinatesThe Journal of Physical Chemistry, 1996
- Classical trajectory studies of the reaction CH4+H→CH3+H2The Journal of Chemical Physics, 1995
- Ab Initio Evaluation of the Barrier Height.Theoretical Rate Constant of the NH3 + H .fwdarw. NH2 + H2 ReactionThe Journal of Physical Chemistry, 1994
- Accurate coupled cluster reaction enthalpies and activation energies for X+H2→XH+H (X=F, OH, NH2, and CH3)The Journal of Chemical Physics, 1993
- Theoretical calculations of the thermal rate constants for the gas-phase chemical reactions hydrogen atom + ammonia .dblarw. hydrogen + amidogen and deuterium atom + ammonia-d3 .dblarw. deuterium + amidogen-d2The Journal of Physical Chemistry, 1990
- Vibrational-rotational analysis of ab initio potential energy surfaces for symmetric-top molecules: application to ammonia isotopomersThe Journal of Physical Chemistry, 1988
- Ab initio studies of abstraction reactions XHn + hydrogen (H2) .fwdarw. XHn+1 + hydrogen (H) (X = carbon, nitrogen, silicon, or phosphorus)Journal of the American Chemical Society, 1983
- Heat of formation and adiabatic electron affinity of amidogenThe Journal of Physical Chemistry, 1979
- The enthalpy of formation of benzylamineThe Journal of Chemical Thermodynamics, 1977
- ESR Study of the Kinetics of the Reactions of D Atoms and O Atoms with NH3The Journal of Chemical Physics, 1969