Advanced Catalysis Research Group, RIKEN Center for Sustainable Resource Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
Organometallic Chemistry Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
J Am Chem Soc. 2020 Oct 21;142(42):18128-18137. doi: 10.1021/jacs.0c08362. Epub 2020 Oct 7.
The regiodivergent catalysis of C-H alkylation with alkenes is of great interest and importance but has remained hardly explored to date. We report herein the first regiodivergent C-H alkylation of quinolines with alkenes by half-sandwich rare-earth catalysts. The regiodivergence was achieved by fine-tuning the metal/ligand combination or steric and electronic properties of the catalysts. The use of the CMe-ligated scandium catalyst for the reaction of quinolines with styrenes and that of the CMeH-ligated yttrium catalyst for the reaction with aliphatic olefins exclusively afforded the corresponding C8-H alkylation products, thus constituting the first example of direct C8-H alkylation of neutral quinolines. In contrast, the -catalyzed reaction of 2-arylquinolines with aliphatic olefins and the -catalyzed reaction with styrenes selectively gave the 2-aryl -C-H alkylation products. On the basis of the catalyst/substrate-controlled regiodivergence, the sequential regiospecific dialkylation of quinolines with two different alkenes has also been achieved. DFT studies revealed that the C-H activation of 2-phenylquinoline at both the C8 position and an position of the 2-phenyl substituent was possible, and these two types of initially formed C-H activation products were interconvertible through the coordination and C-H activation of another molecule of quinoline. The regioselectivity for the C-H alkylation reactions was governed not only by the ease of the initial formation of the C-H activation products but also by the energy barriers for their interconversions, as well as by the energy barriers or steric and electronic influences in the subsequent alkene insertion processes. This work has not only constituted an efficient protocol for the selective synthesis of diversified quinoline derivatives but also offered unprecedented insights into the C-H activation and transformation of quinolines and may help in the design of more efficient, selective, or complementary catalysts.
烯与 C-H 烷基化的区域选择性催化具有重要意义,但迄今为止几乎没有得到探索。我们在此报告了首例通过半夹心稀土催化剂实现的喹啉与烯烃的区域选择性 C-H 烷基化。通过精细调整金属/配体组合或催化剂的空间和电子性质来实现区域选择性。使用 CMe 配体钪催化剂 进行喹啉与苯乙烯的反应,以及使用 CMeH 配体钇催化剂 进行与脂肪族烯烃的反应,仅得到相应的 C8-H 烷基化产物,这是首例中性喹啉的直接 C8-H 烷基化反应。相比之下,-催化的 2-芳基喹啉与脂肪族烯烃的反应和 -催化的与苯乙烯的反应选择性地得到 2-芳基 -C-H 烷基化产物。基于催化剂/底物控制的区域选择性,还实现了两种不同烯烃与喹啉的顺序区域特异性二烷基化。DFT 研究表明,2-苯基喹啉的 C8 位和 2-苯基取代基的 位的 C-H 活化都是可能的,这两种类型的初始形成的 C-H 活化产物可以通过另一个喹啉分子的配位和 C-H 活化相互转化。C-H 烷基化反应的区域选择性不仅取决于初始形成 C-H 活化产物的容易程度,还取决于它们相互转化的能垒,以及后续烯烃插入过程中的能垒或空间和电子影响。这项工作不仅构成了一种有效合成各种喹啉衍生物的方法,而且为喹啉的 C-H 活化和转化提供了前所未有的见解,并可能有助于设计更高效、选择性或互补的催化剂。