Quantum chemical studies on the thermochemistry of alkyl and peroxyl radicals

Citation
T. Brinck et al., Quantum chemical studies on the thermochemistry of alkyl and peroxyl radicals, J PHYS CH A, 103(35), 1999, pp. 7094-7104
Citations number
58
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF PHYSICAL CHEMISTRY A
ISSN journal
10895639 → ACNP
Volume
103
Issue
35
Year of publication
1999
Pages
7094 - 7104
Database
ISI
SICI code
1089-5639(19990902)103:35<7094:QCSOTT>2.0.ZU;2-9
Abstract
Homolytic bond dissociation enthalpies (BDEs) for C-H bonds in substituted methanes, C-O bonds in peroxyl radicals, and for O-H bonds in hydroperoxide s have been calculated using density functional theory at the B3LYP/6-31G(d ,p) and B3LYP/6-311+G(2df,2p) levels of theory, and using ab initio theory at the G2MS level. Ionization energies (IEs) of substituted methyl radicals and electron affinities (EAs) of peroxyl radicals have been calculated usi ng the same methods. It is found that the B3LYP method is not generally rel iable for prediction of absolute BDEs. However, this method works well for prediction of substituent effects on BDEs and for prediction of Ifs and EAs . The deviations from experimental values are generally within 2-3 kcal/mel . The accuracy of the G2MS method is in general slightly better, and it is also capable of predicting accurate absolute BDEs. The stability of alkyl r adicals is largely affected by substituents. This gives rise to large subst ituent effects on the C-H BDE in substituted methanes and the C-O BDE in pe roxyl radicals. However, in the latter case the relative stabilization of t he peroxyl radical is also of great importance for determining the BDE, In particular, electron-donating substituents have large stabilizing effects o n peroxyl radicals. The substituent effects on the O-H bond in hydroperoxid es are relatively small and largely determined by internal hydrogen bonding . There are relatively large substituent effects on the IE of alkyl radical s and the EA of peroxyl radicals. For some of the alkyl radicals with elect ron-withdrawing substituents, the ionization process leads to a considerabl e rearrangement of the nuclear configuration. In particular, three-membered ring systems are in several instances favored energetically over primary c arbocations.