INTERPOLATED VARIATIONAL TRANSITION-STATE THEORY - PRACTICAL METHODS FOR ESTIMATING VARIATIONAL TRANSITION-STATE PROPERTIES AND TUNNELING CONTRIBUTIONS TO CHEMICAL-REACTION RATES FROM ELECTRONIC-STRUCTURE CALCULATIONS

被引:312
作者
GONZALEZLAFONT, A
TRUONG, TN
TRUHLAR, DG
机构
[1] UNIV MINNESOTA, DEPT CHEM, MINNEAPOLIS, MN 55455 USA
[2] UNIV MINNESOTA, INST SUPERCOMP, MINNEAPOLIS, MN 55455 USA
关键词
D O I
10.1063/1.461221
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In many cases, variational transition states for a chemical reaction are significantly displaced from a saddle point because of zero-point and entropic effects that depend on the reaction coordinate. Such displacements are often controlled by the competition between the potential energy along the minimum-energy reaction path and the energy requirments of one or more vibrational modes whose frequencies show a large variation along the reaction path. In calculating reaction rates from potential-energy functions we need to take account of these factors and-especially at lower temperatures-to include tunneling contributions, which also depend on the variation of vibrational frequencies along a reaction path. To include these effects requires more information about the activated complex region of the potential-energy surface than is required for conventional transition-state theory. In the present article we show how the vibrational and entropic effects of variational transition-state theory and the effective potentials and effective masses needed to calculate tunneling probabilities can be estimated with a minimum of electronic structure information, thereby allowing their computation at a higher level of theory than would otherwise be possible. As examples, we consider the reactions OH + H-2, CH3 + H-2, and Cl + CH4 and some of their isotopic analogs. We find for Cl + CH4 --> HCl + CH3 that the reaction rate is greatly enhanced by tunneling under conditions of interest for atmospheric chemistry.
引用
收藏
页码:8875 / 8894
页数:20
相关论文
共 91 条
[1]  
[Anonymous], 1971, JANAF THERMOCHEMICAL
[2]  
[Anonymous], 1966, GAS PHASE REACTION R
[3]  
[Anonymous], 1985, THEORY CHEM REACT DY
[4]   DYNAMICS OF HYDROGEN-ATOM AND PROTON-TRANSFER REACTIONS - SYMMETRIC CASE [J].
BABAMOV, VK ;
MARCUS, RA .
JOURNAL OF CHEMICAL PHYSICS, 1981, 74 (03) :1790-1798
[5]   ABINITIO REACTION PATHS AND DIRECT DYNAMICS CALCULATIONS [J].
BALDRIDGE, KK ;
GORDON, MS ;
STECKLER, R ;
TRUHLAR, DG .
JOURNAL OF PHYSICAL CHEMISTRY, 1989, 93 (13) :5107-5119
[6]  
BAUSCHLICHER CW, 1989, NATO ADV SCI I C-MAT, V277, P1
[7]   MOLLER-PLESSET THEORY FOR ATOMIC GROUND-STATE ENERGIES [J].
BINKLEY, JS ;
POPLE, JA .
INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 1975, 9 (02) :229-236
[8]   TEST OF VARIATIONAL TRANSITION-STATE THEORY WITH A LARGE-CURVATURE TUNNELING APPROXIMATION AGAINST ACCURATE QUANTAL REACTION PROBABILITIES AND RATE COEFFICIENTS FOR 3 COLLINEAR REACTIONS WITH LARGE REACTION-PATH CURVATURE - CL+HCL,CL+DCL, AND CL+MUCL [J].
BONDI, DK ;
CONNOR, JNL ;
GARRETT, BC ;
TRUHLAR, DG .
JOURNAL OF CHEMICAL PHYSICS, 1983, 78 (10) :5981-5989
[9]  
Bowman J. M., 1986, THEORY CHEM REACTION, P47
[10]   VINYLIDENE - POTENTIAL-ENERGY SURFACE AND UNIMOLECULAR REACTION DYNAMICS [J].
CARRINGTON, T ;
HUBBARD, LM ;
SCHAEFER, HF ;
MILLER, WH .
JOURNAL OF CHEMICAL PHYSICS, 1984, 80 (09) :4347-4354