Lifetimes ofα-halo andα-azidobenzyl carbocations in aqueous solution
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Abstract
The title cations were produced in aqueous solution by chemical initiation (solvolysis) of benzyl-gem-dihalides and benzyl-gem-diazides. The solvolysis reactions of benzyl-gem-dihalides and benzyl-gem-diazides in water proceed by a stepwise mechanism through α-halobenzyl carbocation and α-azidobenzyl carbocation intermediates, which are captured by water to give the corresponding carbonyl compounds as the sole detectable products. Rate constant ratiok x/ks(M−1) for partitioning of the carbocation between reaction with halide/azide ion and reaction with water is determined by analysis of halide/azide common ion inhibition of the solvolysis reaction. The rate constantsk s(s-1) for the reaction of the cation with solvent water were determined from the experimental values ofk x/ks andk solv, for the solvolysis of the benzyl-gem-dihalides and benzyl-gem-diazides respectively, usingk x = 5 × 109M−1 s−1 for diffusion-limited reaction of halide/azide ion with α-substituted benzyl carbocations. The values of 1/k s are thus the lifetimes of the α-halobenzyl carbocations and α-azidobenzyl carbocations respectively.
Keywords
Solvolysis lifetimes α-halobenzyl carbocations α-azidobenzyl carbocationsPreview
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References
- 1.Streitwieser A Jr 1962Solvolytic displacement reactions (New York: Mcgraw-Hill);Thorton E R 1964Solvolysis mechanisms (New York: Ronald Press)Google Scholar
- 2. (a)Young P R and Jencks W P 1979J. Am. Chem. Soc. 101 3290Google Scholar
- 2. (b)Harris J M, Shafer S G, Moffatt J R and Beeker A R 1979J. Am. Chem. Soc. 101 3295CrossRefGoogle Scholar
- 3.Pross A and Shaik S S 1983Acc. Chem. Res. 16 363CrossRefGoogle Scholar
- 4.Hoz S and Wolk J L 1990Tetrahedron Lett. 31 4085CrossRefGoogle Scholar
- 5.Richard J P, Amyes T L, Jagannadham V, Lee Y G and Rice D J 1995J. Am. Chem. Soc. 117 5198CrossRefGoogle Scholar
- 6.Jagannadham V, Amyes T L and Richard J P 1993J. Chem. Soc., Perkin Trans. 2 171Google Scholar
- 7.Jagannadham V, Amyes T L and Richard J P 1993J. Am. Chem. Soc. 115 8465CrossRefGoogle Scholar
- 8.Richard J P, Jagannadham V, Amyes T L, Mishima M and Tsuno Y 1994J. Am. Chem. Soc. 116 6706CrossRefGoogle Scholar
- 9.Richard J P, Amyes T L, Lee Y G and Jagannadham V 1994J. Am. Chem. Soc. 116 10833CrossRefGoogle Scholar
- 10.Amyes T L, Richard J P and Jagannadham V 1995Spec. Publ., R. Soc. Chem. 148 334Google Scholar
- 11.Hine J and Rosscup R J 1960J. Am. Chem. Soc. 82 6115CrossRefGoogle Scholar
- 12.Vitullo V P and Wilgis F P 1975J. Am. Chem. Soc. 97 458CrossRefGoogle Scholar
- 13.Vitullo V P and Wilgis F P 1981J. Am. Chem. Soc. 103 880CrossRefGoogle Scholar
- 14.Vitullo V P and Wilgis F P 1981J. Am. Chem. Soc. 103 1982CrossRefGoogle Scholar
- 15.March J 1992Advanced organic chemistry: Reactions, mechanisms and structure (New York: John Wiley & Sons) 4th edn, pp 970Google Scholar
- 16.IUPAC Commission on Physical Organic Chemistry 1989Pure Appl. Chem. 61 23Google Scholar
- 17.Guthrie R D and Jencks W P 1989Acc. Chem. Res. 22 343CrossRefGoogle Scholar