THEORETICAL-STUDIES OF THE KINETICS, THERMOCHEMISTRY, AND MECHANISM OF H-ABSTRACTION FROM METHANOL AND ETHANOL

被引:60
作者
PARDO, L [1 ]
BANFELDER, JR [1 ]
OSMAN, R [1 ]
机构
[1] CUNY MT SINAI SCH MED,DEPT PHYSIOL & BIOPHYS,1 GUSTAVE L LEVY PL,NEW YORK,NY 10029
关键词
D O I
10.1021/ja00033a013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The process of hydrogen abstraction from methanol and ethanol has been calculated with ab initio quantum chemical methods with extended basis sets (6-311G**) and with the inclusion of correlation up to MP4SDQ. These studies serve as a model of such processes in large molecules of biological importance including the sugar moiety of DNA. A comparison of geometries of ground and transition states optimized at UHF and MP2 levels with the 6-3 IG basis set shows that the UHF optimized geometries have lower energies at the highest level of theory used (MP4SDQ/6-31 IG**). The transition states occur at a somewhat later stage along the reaction coordinate at the UHF level than at the MP2 level. Energy barriers, along with zero-point energies, were used to calculate the rate constants for H-abstraction from C(alpha) of methanol and ethanol. Tunneling corrections were applied according to an Eckart treatment of an unsymmetrical unidimensional barrier. The corrected rate constants are in very good agreement with experiment over a wide range of temperatures. The same approach was used to predict the rate constant for the abstraction of the hydrogen from C(beta) of ethanol, which is not known from experimental measurements. The calculated C-H bond strengths and heats of reactions are also in good agreement when the correlation energy is scaled according to the MPnSAC approach. The geometric and energetic parameters of the transition states behave according to Hammond's postulate, i.e., the more exothermic the H-abstraction, the closer is the transition state to the reactants. This relationship suggests that the C-H bond strength is one of the major factors that determine the barrier to H-abstraction. An analysis of the MCSCF wave function constructed from a CAS of three electrons distributed in three orbitals (sigma(CH), sigma*CH, and the orbital containing the unpaired electron) supports this conclusion.
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页码:2382 / 2390
页数:9
相关论文
共 43 条
[1]   BOND DISSOCIATION ENERGY OF C-H BOND IN ETHANOL - KINETIC STUDY OF REACTION I2 + ETHANOL [J].
ALFASSI, ZB ;
GOLDEN, DM .
JOURNAL OF PHYSICAL CHEMISTRY, 1972, 76 (23) :3314-&
[2]   PULSE RADIOLYTIC STUDY OF SITE OF OH RADICAL ATTACK ON ALIPHATIC ALCOHOLS IN AQUEOUS-SOLUTION [J].
ASMUS, KD ;
MOCKEL, H ;
HENGLEIN, A .
JOURNAL OF PHYSICAL CHEMISTRY, 1973, 77 (10) :1218-1221
[4]  
ATKINSON R, 1989, J PHYS CHEM REF DATA, P160
[5]  
ATKINSON R, 1985, CHEM REV, P69
[6]   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
[7]   THEORETICAL-STUDIES OF THE ENERGETICS AND MECHANISMS OF CHEMICAL-REACTIONS - ABSTRACTION REACTIONS [J].
DUNNING, TH ;
HARDING, LB ;
BAIR, RA ;
EADES, RA ;
SHEPARD, RL .
JOURNAL OF PHYSICAL CHEMISTRY, 1986, 90 (03) :344-356
[8]   HYDROGEN-ATOM ABSTRACTION FROM ALDEHYDES - OH+H2CO AND O+H2CO [J].
DUPUIS, M ;
LESTER, WA .
JOURNAL OF CHEMICAL PHYSICS, 1984, 81 (02) :847-850
[9]  
DUPUIS M, 1988, HONDO
[10]   The penetration of a potential barrier by electrons [J].
Eckart, C .
PHYSICAL REVIEW, 1930, 35 (11) :1303-1309