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Cited 16 time in webofscience Cited 13 time in scopus
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Limitations of the transition state variation model. Part 8. Dual reaction channels for solvolyses of 3,4-dimethoxybenzenesulfonyl chloride

Authors
Koo, In SunKwon, EunjuChoi, HojuneYang, KiyullPark, Jong KeunLee, Jong PalLee, IkchoonBentley, T. William
Issue Date
20-Dec-2007
Publisher
WILEY-V C H VERLAG GMBH
Keywords
solvolyses; kinetic solvent isotope effect; general-base catalysis; dual reaction channels
Citation
BULLETIN OF THE KOREAN CHEMICAL SOCIETY, v.28, no.12, pp 2377 - 2381
Pages
5
Indexed
SCIE
SCOPUS
KCI
Journal Title
BULLETIN OF THE KOREAN CHEMICAL SOCIETY
Volume
28
Number
12
Start Page
2377
End Page
2381
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/28199
ISSN
0253-2964
1229-5949
Abstract
Solvolyses of 3,4-dimethoxybenzenesulfonyl chloride (DSC) in water, D2O, CH3OD, and in aqueous binary mixtures of acetone, acetonitrile, 1,4-dioxane, ethanol, methanol, and 2,2,2-trifluoroethanol (TFE) have been investigated at 25.0 degrees C. Kinetic solvent isotope effects (KSIE) in water and in methanol and product selectivities in alcohol-water mixtures are also reported. The Grunwald-Winstein plot of first-order rate constants for the solvolyic reaction of DSC with Y-Cl shows marked dispersions into separated lines for various aqueous mixtures. With use of the extended Grunwald-Winstein equation, the I and m values obtained are 1.12 and 0.58 respectively for the solvolyses of DSC. The relatively large magnitude of I is consistent with substantial nucleophilic solvent assistance. From Grunwald-Winstein plots the rate data are dissected approximately into contributions from two competing reaction channels. This interpretation is supported for alcohol-water mixtures by the trends of product selectivities, which show a maximum for ethanol-water mixtures. From the KSIE of 1.45 in methanol, it is proposed that the reaction channel favored in methanol-water mixtures and in all less polar media is general-base catalysed and/or is possibly (but less likely) an addition-elimination pathway. Also, the KISE value of 1.35 for DSC in water is expected for S(N)2-S(N)1 processes, with minimal general base catalysis, and this mechanism is proposed for solvolyses in the most polar media.
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