AI Article Synopsis

  • Fluorine-containing groups enhance the functionality of molecules, leading to a need for efficient, metal-free methods to incorporate them.
  • The study presents a diazaphospholene-catalyzed process that allows for the selective hydrodefluorination of trifluoromethylalkenes into either gem-difluoroalkenes or terminal monofluoroalkenes, adjusting reactant ratios.
  • The reaction occurs under mild conditions with high yields, and mechanistic studies reveal it involves stepwise additions and eliminations, with theoretical calculations explaining the observed selectivity influenced by the fluorine atom.

Article Abstract

Fluorine-containing moieties show significant effects in improving the properties of functional molecules. Consequently, efficient methods for installing them into target compounds are in great demand, especially those enabled by metal-free catalysis. Here we show a diazaphospholene-catalyzed hydrodefluorination of trifluoromethylalkenes to chemoselectively construct gem-difluoroalkenes and terminal monofluoroalkenes by simple adjustment of the reactant stoichiometry. This metal-free hydrodefluorination features mild reaction conditions, good group compatibility, and almost quantitative yields for both product types. Stoichiometric experiments indicated a stepwise mechanism: hydridic addition to fluoroalkenes and subsequent β-F elimination from hydrophosphination intermediates. Density functional theory calculations disclosed the origin of chemoselectivity, regioselectivity and stereoselectivity, suggesting an electron-donating effect of the alkene-terminal fluorine atom.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8121801PMC
http://dx.doi.org/10.1038/s41467-021-23101-3DOI Listing

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Article Synopsis
  • Fluorine-containing groups enhance the functionality of molecules, leading to a need for efficient, metal-free methods to incorporate them.
  • The study presents a diazaphospholene-catalyzed process that allows for the selective hydrodefluorination of trifluoromethylalkenes into either gem-difluoroalkenes or terminal monofluoroalkenes, adjusting reactant ratios.
  • The reaction occurs under mild conditions with high yields, and mechanistic studies reveal it involves stepwise additions and eliminations, with theoretical calculations explaining the observed selectivity influenced by the fluorine atom.
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