The kinetics of carbonyl radical ring closuresElectronic supplementary information (ESI) available: Table S1, Fig. S1-S3, Gaussian archive entries of all transition states calculated in this work, 49 pages. See DOI: 10.1039/c4sc00397g

Intramolecular homolytic addition reactions of acyl and oxyacyl radicals 1 , 7-11 have been investigated by computational techniques. Acyl radical (X = CH 2 ) cyclizations appear to proceed through Beckwith-Houk transition states that adopt pseudo-chair like structures, while the oxyacyl radicals (X...

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Bibliographic Details
Main Authors Hancock, Amber N, Schiesser, Carl H
Format Journal Article
LanguageEnglish
Published 01.04.2014
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Summary:Intramolecular homolytic addition reactions of acyl and oxyacyl radicals 1 , 7-11 have been investigated by computational techniques. Acyl radical (X = CH 2 ) cyclizations appear to proceed through Beckwith-Houk transition states that adopt pseudo-chair like structures, while the oxyacyl radicals (X = O) appear to behave more like sp 2 -hybridized radicals in which the 6- endo transition states are predicted to adopt boat-like structures. G3(MP2)-RAD calculations provide activation energies ( E a ) that lie in the range: 24-37 kJ mol −1 (acyl, 5- exo ); 17-29 kJ mol −1 (oxyacyl, 5- exo ); 32-41 kJ mol −1 (acyl, 6- endo ); and 40-50 kJ mol −1 (oxyacyl, 6- endo ), with associated log( A /s −1 ) values in the expected range: 10.5-12.5. These data provide rate constants for 5- exo cyclization ( k c ) of ∼10 4 to 10 7 s −1 for the acyl radicals, and ∼10 6 to 10 9 s −1 for the oxyacyl radicals (296 K) and are in excellent agreement with the few available kinetic data. This study provides valuable new information for practitioners wishing to employ this chemistry in synthesis. Kinetic data for intramolecular homolytic substitution reactions of a series of acyl and oxyacyl radicals are reported.
Bibliography:Electronic supplementary information (ESI) available: Table S1, Fig. S1-S3, Gaussian archive entries of all transition states calculated in this work, 49 pages. See DOI
10.1039/c4sc00397g
ISSN:2041-6520
2041-6539
DOI:10.1039/c4sc00397g