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Article
Effect of Hydration and Dimerization of the Formamidine Rearrangement
Journal of the American Chemical Society (1991)
  • Kiet A. Nguyen
  • Mark S. Gordon
  • Donald G. Truhlar, University of Minnesota - Twin Cities
Abstract

Ab initio molecular orbital theory is used to predict the geometry of the transition state and the energy barrier for the double-proton transfer in formamidine dimer, using SCF /6-31 G(d,p) and MP2/6-31 G(d,p) wave functions, respectively. Intramolecular hydrogen transfer in the uncomplexed monomer (I) and double-proton transfer in the mixed dimer of formamidine and water (2) are also investigated at several levels of theory. All computational levels predict the barrier for the uncomplexed reaction (I) to be approximately twicdhat for the hydrated reaction (2). Isomerization by double-proton transfer in the dimer (3) is predicted to be the most favorable process. Indeed, for (3), the energy gained from the formation of the hydrogen-bonded complex is greater than the associated barrier for the double-proton transfer, thereby making this process very efficient.

Disciplines
Publication Date
February, 1991
Publisher Statement
Reprinted (adapted) with permission from Journal of the American Chemical Society 113 (1991): 1596, doi:10.1021/ja00005a023. Copyright 1991 American Chemical Society.
Citation Information
Kiet A. Nguyen, Mark S. Gordon and Donald G. Truhlar. "Effect of Hydration and Dimerization of the Formamidine Rearrangement" Journal of the American Chemical Society Vol. 113 Iss. 5 (1991)
Available at: http://works.bepress.com/mark_gordon/97/