Key Laboratory of Pesticide & Chemical Biology, Ministry of Education, College of Chemistry, Central China Normal University, Wuhan, 430079, PR China.
College of Chemistry and Institute of Green Catalysis, Zhengzhou University, 100 Science Avenue, Zhengzhou, 450001, Henan, PR China.
Nat Commun. 2020 Nov 9;11(1):5662. doi: 10.1038/s41467-020-19508-z.
Unlike the well-reported 1,2-difunctionalization of alkenes that is directed by classic pyridine and imine-containing directing groups, oxo-palladacycle intermediates featuring weak Pd-O coordination have been less demonstrated in C-H activated cascade transformations. Here we report a quadruple C-H activation cascade as well as hydro-functionalization, C-H silylation/borylation sequence based on weakly coordinated palladium catalyst. The hydroxyl group modulates the intrinsic direction of the Heck reaction, and then acts as an interrupter that biases the reaction away from the classic β-H elimination and toward C-H functionalization. Mechanistically, density functional theory calculation provides important insights into the key six-membered oxo-palladacycle intermediates, and indicates that the β-H elimination is unfavorable both thermodynamically and kinetically. In this article, we focus on the versatility of this approach, which is a strategic expansion of the Heck reaction.
不同于经典的吡啶和亚胺类导向基团导向的烯烃 1,2-双官能化反应,具有较弱 Pd-O 配位的氧化钯环中间体在 C-H 活化级联转化中较少得到证明。在这里,我们报道了一种基于弱配位钯催化剂的四重 C-H 活化级联反应以及氢官能化、C-H 硅化/硼化序列。羟基调节 Heck 反应的固有方向,然后作为中断剂,使反应偏离经典的β-H 消除,转而进行 C-H 官能化。在机理上,密度泛函理论计算为关键的六元氧化钯环中间体提供了重要的见解,并表明β-H 消除在热力学和动力学上都是不利的。在本文中,我们关注的是这种方法的多功能性,这是 Heck 反应的一种战略扩展。