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Updated: Aug 20, 2026

Protocol for the Synthesis of Ortho-trifluoromethoxylated Aniline Derivatives
Published on: January 19, 2016
Unlocking Free α-Trifluoromethoxy Carbene Reactivity from Aldehyde
Hongye Zhu1, Chenxi Liu1, Cong Xu1
1Jilin Province Key Laboratory of Organic Functional Molecular Design & Synthesis, College of Chemistry, Northeast Normal University, Changchun130024, China.
None:
Carbenes, recognized as potent intermediates, enable otherwise inaccessible chemical transformations. The development of readily accessible aldehydes as oxycarbene precursors is of significant research value, yet it has never been achieved before. Compounds with a better decomposable trifluoromethoxy (-OCF3) group have found diverse applications in pharmaceutical and agricultural research and are considered promising PFAS's alternatives. Here, we report that (hetero)aryl-, alkenyl-, and alkynyl-aldehydes are readily converted (via isolable or in situ-utilized α-OCF3 secondary chlorides derived from O-trifluoromethylation/chlorination of aldehydes) to unprecedented, structurally diverse free α-OCF3 carbenes to facilitate three reaction classes, including cyclopropanation, Si-H insertion, and phosphonylation via phosphorus ylide. This approach opens avenues to access previously elusive but potentially valuable OCF3-containing compounds, including OCF3-substituted cyclopropanes, silanes, and phosphonates, expanding both organofluorine and carbene chemistry.
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