Center for Catalytic Hydrocarbon Functionalizations, Institute for Basic Science (IBS), Daejeon, 34141, Korea.
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Korea.
Angew Chem Int Ed Engl. 2020 Dec 7;59(50):22675-22683. doi: 10.1002/anie.202010597. Epub 2020 Oct 12.
Although N-alkenoxyheteroarenium salts have been widely used as umpoled synthons with nucleophilic (hetero)arenes, the use of electron-poor heteroarenes has remained unexplored. To overcome the inherent electron deficiency of quinolinium salts, a traceless nucleophile-triggered strategy was designed, wherein the quinolinium segment is converted into a dearomatized intermediate, thereby allowing simultaneous C8-functionalization of quinolines at room temperature. Experimental and computational studies support the traceless operation of a nucleophile, which enables the previously inaccessible transformation of N-alkenoxyheteroarenium salts. Remarkably, the generality of this strategy has been further demonstrated by broad applications in the regioselective C-H functionalization of other electron-deficient heteroarenes such as phenanthridine, isoquinoline, and pyridine N-oxides, offering a practical tool for the late-stage functionalization of complex biorelevant molecules.
尽管 N-烷氧基杂芳鎓盐已被广泛用作亲核(杂)芳环的反极性合成子,但电子缺电子杂芳环的应用仍未得到探索。为了克服季铵盐固有的缺电子性,设计了一种无痕迹亲核试剂触发策略,其中将季铵盐部分转化为去芳构化中间体,从而允许在室温下同时对喹啉进行 C8 功能化。实验和计算研究支持亲核试剂的无痕迹操作,从而实现了以前无法进行的 N-烷氧基杂芳鎓盐的转化。值得注意的是,该策略的通用性通过在其他缺电子杂芳环如菲啶、异喹啉和吡啶 N-氧化物的区域选择性 C-H 官能化中的广泛应用得到了进一步证明,为复杂生物相关分子的后期功能化提供了一种实用工具。