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Cleaving the aryl C-OCF3 bond is challenging but advances enable new C-C, C-H, and C-heteroatom bond formations. This review highlights progress in activating this strong bond for synthetic chemistry.

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Area of Science:

  • Organic Chemistry
  • Synthetic Chemistry

Background:

  • Trifluoromethoxylated arenes are important synthetic targets.
  • The cleavage of the aryl C-OCF3 bond is synthetically challenging.
  • Few methods exist for the selective activation of the C-OCF3 group.

Purpose of the Study:

  • To review recent advances in the activation of the aryl C-OCF3 bond.
  • To highlight methods enabling C-C, C-H, and C-heteroatom bond formations.
  • To underscore the potential of this emerging field in synthetic chemistry.

Main Methods:

  • Review of literature on C-OCF3 bond activation.
  • Analysis of key synthetic transformations.
  • Categorization of bond formation strategies.

Main Results:

  • Significant progress has been made in activating the strong aryl C-OCF3 bond.
  • Novel methodologies enable the formation of new carbon-carbon bonds.
  • Methods for C-H and C-heteroatom bond formation have been developed.

Conclusions:

  • The activation of the aryl C-OCF3 bond is a rapidly developing area.
  • These advances offer new synthetic routes and possibilities.
  • Further research holds transformative potential for organic synthesis.