articleJournal of the American Chemical SocietyAug 9, 2007Closed access

Distortion/Interaction Energy Control of 1,3-Dipolar Cycloaddition Reactivity

University of California, Los Angeles

PubMed
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Abstract

Computations of activation barriers and reaction energies for 1,3-dipolar cycloadditions by a high-accuracy quantum mechanical method (CBS-QB3) now reveal previously unrecognized quantitative trends in activation barriers. The distortion/interaction theory explains why (1) there is a monotonic decrease of ∼6 kcal/mol in the barrier height along the series oxides, imine, and ylide, for each class of 1,3-dipoles; (2) the corresponding nitrilium and azomethine betaines have almost identical cycloaddition barrier heights; (3) cycloadditions of a given 1,3-dipole with ethylene and acetylene have the same activation energies, in spite of very different reaction thermodynamics and frontier orbital gaps. There is a…

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Authors

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Topics & keywords

Keywords
  • Chemistry
  • Dipole
  • Cycloaddition
  • Reactivity (psychology)
  • Computational chemistry
  • Molecular orbital
  • Molecular geometry
  • Transition state
UN Sustainable Development Goals
  • Affordable and clean energy
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