Huang Jun, Gao Qi, Zhong Tao, Chen Shuai, Lin Wei, Han Jie, Xie Jin
State Key Laboratory of Coordination Chemistry, Jiangsu Key Laboratory of Advanced Organic Materials, Chemistry and Biomedicine Innovation Center (ChemBIC), School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.
School of Chemistry and Environmental Engineering, Jiangsu University of Technology, Changzhou, 213001, China.
Nat Commun. 2023 Dec 14;14(1):8292. doi: 10.1038/s41467-023-44097-y.
Selective defluorinative functionalization of trifluoromethyl group (-CF) is an attractive synthetic route to the pharmaceutically privileged fluorine-containing moiety. Herein, we report a strategy based on photoexcited copper catalysis to activate the C-F bond of di- or trifluoromethylated arenes for divergent radical C-N coupling with carbazoles and aromatic amines. The use of different ligands can tune the reaction products diversity. A range of substituted, structurally diverse α,α-difluoromethylamines can be obtained from trifluoromethylated arenes via defluorinative C-N coupling with carbazoles, while an interesting double defluorinative C-N coupling is ready for difluoromethylated arenes. Based on this success, a carbazole-centered PNP ligand is designed to be an optimal ligand, enabling a copper-catalyzed C-N coupling for the construction of imidoyl fluorides from aromatic amines through double C-F bond functionalization. Interestingly, a 1,2-difluoroalkylamination strategy of styrenes is also developed, delivering γ,γ-difluoroalkylamines, a bioisostere to β-aminoketones, in synthetically useful yields. The DFT studies reveal an inner-sphere electron transfer mechanism for Cu-catalyzed selective activation of C(sp)-F bonds.
三氟甲基(-CF)的选择性脱氟官能团化是通往具有药学优势的含氟部分的一条有吸引力的合成路线。在此,我们报道了一种基于光激发铜催化的策略,用于活化二氟或三氟甲基化芳烃的C-F键,以实现与咔唑和芳香胺的不同自由基C-N偶联。使用不同的配体可以调节反应产物的多样性。通过与咔唑进行脱氟C-N偶联,可以从三氟甲基化芳烃中获得一系列取代的、结构多样的α,α-二氟甲胺,而对于二氟甲基化芳烃则可以进行有趣的双脱氟C-N偶联。基于这一成功,设计了一种以咔唑为中心的PNP配体作为最佳配体,通过双C-F键官能化实现铜催化的C-N偶联,用于从芳香胺构建亚氨基氟化物。有趣的是,还开发了一种苯乙烯的1,2-二氟烷基胺化策略,以合成有用的产率提供γ,γ-二氟烷基胺,它是β-氨基酮的生物电子等排体。DFT研究揭示了铜催化选择性活化C(sp)-F键的内球电子转移机制。