A Comparison between the Cycloadditions of Allenyl- and Vinyl-Cyclopentanes Using Density Functional Theory and GRRM Program

Chem Pharm Bull (Tokyo). 2020;68(8):737-741. doi: 10.1248/cpb.c20-00144.

Abstract

Cycloaddition catalyzed by transition metals such as rhodium (I) is an important way to synthesize functionalized molecules in medicinal chemistry. When the reagent has a saturated ring containing more than five carbons (or heavy atoms), the reaction can progress when the compound has an allenyl group, but not for a vinyl group. Here, we constructed two computational models for allenylcyclopentane-alkyne and vinylcyclopentane-alkyne, and obtained their reaction pathways using density functional theory (DFT). From the reaction pathways, we confirmed that the former model has a much lower reaction energy than the latter. We also found that the molecular orbitals of the transition state structure at the rate-controlling step contribute significantly to the difference in reactivity between the two models.

Keywords: allenylcyclopentane; cycloaddition; energy diagram; global reaction route mapping; metallocycle; transition metal catalyst.

MeSH terms

  • Alkynes / chemistry*
  • Catalysis
  • Cycloaddition Reaction / methods
  • Cyclopentanes / chemistry*
  • Density Functional Theory*
  • Rhodium / chemistry
  • Thermodynamics
  • Vinyl Compounds / chemistry*

Substances

  • Alkynes
  • Cyclopentanes
  • Vinyl Compounds
  • Rhodium