What influences barrier heights in hydrogen abstraction from Thiols by carbon-centered radicals? A curve-crossing study

被引:30
作者
Beare, KD [1 ]
Coote, ML [1 ]
机构
[1] Australian Natl Univ, Res Sch Chem, Canberra, ACT 0200, Australia
关键词
D O I
10.1021/jp048092s
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
High-level ab initio molecular orbital calculations have been used to study the barriers and enthalpies for hydrogen atom abstraction reactions of the form RS-H + R-.' --> RS. + H --> R' for combinations of R, R' = CH3, CH2Cl, CHCl2, CCl3 CH2F, CH2OH, CH2SH, CH2CN, CH2CH3, CH2CH2CH3, CH2Ph, and CH2C(CH3)(3). The results are analyzed with the aid of the curve-crossing model. Hydrogen abstraction by carbon-centered radicals from thiols is generally an exothermic process in which a strong C-H bond is formed at the expense of the weaker S-H bond of the thiol. However, the exothermicities are strongly influenced by substituents on the attacking radical (and, to a lesser extent, the thiol), and the reverse reaction could be thermodynamically preferred for appropriately substituted systems. The barrier heights are predominantly influenced by polar factors, with the reactions of nucleophilic radicals (such as (CH2OH)-C-.) being favored over reactions with electrophilic radicals (such as (CH2CN)-C-.). However, other factors, such as the reaction exothermicity, the strength of the forming and breaking bonds, and (in some cases) direct H-bonding interactions in the transition structures, also contribute to the trends in the barriers.
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页码:7211 / 7221
页数:11
相关论文
共 56 条
[41]   Reply to comment on "Identity hydrogen abstraction reactions, X•+H-X′→X-H+X′• (X = X′ = CH3, SiH3, GeH3, SnH3, PbH3):: A valence bond modeling [J].
Shaik, S ;
de Visser, SP ;
Wu, W ;
Song, LC ;
Hiberty, PC .
JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (19) :5043-5045
[42]   THE COLLAGE OF SN2 REACTIVITY PATTERNS - A STATE CORRELATION DIAGRAM MODEL [J].
SHAIK, SS .
PROGRESS IN PHYSICAL ORGANIC CHEMISTRY, 1985, 15 :197-337
[43]   Valence bond Modeling of barriers in the nonidentity hydrogen abstraction reactions, X′•+H-X→X′-H+X• (X′ ≠ X = CH3, SiH3, GeH3, SnH3, PbH3) [J].
Song, LC ;
Wu, W ;
Dong, KM ;
Hiberty, PC ;
Shaik, S .
JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (46) :11361-11370
[44]   Reaction rate prediction via group additivity Part 1:: H abstraction from alkanes by H and CH3 [J].
Sumathi, R ;
Carstensen, HH ;
Green, WH .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (28) :6910-6925
[45]   Reaction rate prediction via group additivity, part 2: H-abstraction from alkenes, alkynes, alcohols, aldehydes, and acids by H atoms [J].
Sumathi, R ;
Carstensen, HH ;
Green, WH .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (39) :8969-8984
[46]   KINETIC FACTORS THAT CONTROL THE FATE OF THIYL RADICALS IN CELLS [J].
WARDMAN, P ;
VONSONNTAG, C .
BIOTHIOLS, PT A: MONOTHIOLS AND DITHIOLS, PROTEIN THIOLS, AND THIYL RADICALS, 1995, 251 :31-45
[47]  
Warren J. Henre, 1986, AB INITIO MOL ORBITA
[48]  
WERNER HJ, 1999, MOLPRO 2000 6
[49]   CONSERVATION OF ORBITAL SYMMETRY [J].
WOODWARD, RB ;
HOFFMANN, R .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 1969, 8 (11) :781-+
[50]   ABINITIO CALCULATIONS OF HYDROGEN TRANSFERS - A COMPUTATIONAL TEST OF VARIATIONS IN THE TRANSITION-STATE STRUCTURE AND THE COEFFICIENT OF RATE EQUILIBRIUM CORRELATION [J].
YAMATAKA, H ;
NAGASE, S .
JOURNAL OF ORGANIC CHEMISTRY, 1988, 53 (14) :3232-3238