Kim Jinwoo, Shin Kwangmin, Jin Seongho, Kim Dongwook, Chang Sukbok
Department of Chemistry , Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141 , South Korea.
Center for Catalytic Hydrocarbon Functionalization , Institute for Basic Science (IBS) , Daejeon 34141 , South Korea.
J Am Chem Soc. 2019 Mar 6;141(9):4137-4146. doi: 10.1021/jacs.9b00364. Epub 2019 Feb 22.
Direct conversion of C-H bonds into C-C bonds is a promising alternative to the conventional cross-coupling reactions, thus giving rise to a wide range of efficient catalytic C-H functionalization reactions. Among the elementary stages in the catalytic C-C bond formation, reductive elimination constitutes a key step of the catalytic cycle, and, therefore, extensive studies have been made to facilitate this process. In this regard, oxidation on the metal center of a post-transmetalation intermediate would be an appealing approach. Herein, we have explored the substrate scope, catalyst systems, and oxidation tools to prove that the oxidatively induced reductive elimination ( ORE) plays a critical role in the product-releasing C-C bond formation. Notably, we have demonstrated that ORE broadly operates with a series of half-sandwich d Ir(III)-, Rh(III)-, and Ru(II)-aryl complexes. We have described that the metal center oxidation of the isolable post-transmetalation intermediates by means of chemical- or electro-oxidation can readily deliver the desired arylated products upon reductive elimination even at ambient temperature. Computational studies delineated the thermodynamics of the reductive elimination, where the activation barriers are shown to be significantly reduced upon increasing the oxidation states of the intermediates. We were also successful in corroborating this ORE in the corresponding Rh- methyl complex. In addition, catalytic conditions were optimized to incorporate this mechanistic understanding into the Ir-, Rh-, and Ru-catalyzed C-C bond formations under mild conditions.
将C-H键直接转化为C-C键是传统交叉偶联反应的一种有前景的替代方法,从而产生了广泛的高效催化C-H官能化反应。在催化形成C-C键的基本步骤中,还原消除是催化循环的关键步骤,因此,人们进行了广泛的研究以促进这一过程。在这方面,后过渡金属化中间体金属中心的氧化将是一种有吸引力的方法。在此,我们探索了底物范围、催化剂体系和氧化工具,以证明氧化诱导的还原消除(ORE)在生成产物的C-C键形成中起关键作用。值得注意的是,我们已经证明ORE广泛适用于一系列半夹心d型Ir(III)、Rh(III)和Ru(II)芳基配合物。我们已经描述了通过化学或电氧化对可分离的后过渡金属化中间体进行金属中心氧化,即使在室温下通过还原消除也能轻松得到所需的芳基化产物。计算研究描绘了还原消除的热力学,其中显示随着中间体氧化态的增加,活化能垒显著降低。我们还成功地在相应的Rh-甲基配合物中证实了这种ORE。此外,优化了催化条件,以便在温和条件下将这种机理理解纳入Ir、Rh和Ru催化的C-C键形成中。