Center for Catalytic Hydrocarbon Functionalizations, Institute for Basic Science (IBS), Daejeon 34141, South Korea.
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, South Korea.
J Am Chem Soc. 2021 Apr 7;143(13):5191-5200. doi: 10.1021/jacs.1c01524. Epub 2021 Mar 29.
Alkanes are an abundant and inexpensive source of hydrocarbons; thus, development of new methods to convert the hydrocarbon feedstocks to value-added chemicals is of high interest. However, it is challenging to achieve such transformation in a direct and selective manner mainly due to the intrinsic inertness of their C-H bonds. We herein report a tailored Cp*Co(III)(LX)-catalyzed efficient and site-selective intermolecular amidation of unactivated hydrocarbons including light alkanes. Electronic modulation of the cobalt complexes led to the enhanced amidation efficiency, and these effects were theoretically rationalized by the FMO analysis of presupposed cobalt nitrenoid species. Under the current cobalt protocol, a secondary C-H bond selectivity was observed in various nonactivated alkanes to reverse the intrinsic tertiary preference, which is attributed to the steric demands of the cobalt system that imposes difficulties in accessing tertiary C-H bonds. Experimental and computational studies suggested that the putative triplet Co nitrenoids are transferred to the C-H bonds of alkanes via a radical-like hydrogen abstraction pathway.
烷烃是一种丰富且廉价的碳氢化合物来源;因此,开发将碳氢化合物原料转化为高附加值化学品的新方法具有很高的意义。然而,由于其 C-H 键固有的惰性,直接且选择性地实现这种转化具有挑战性。在此,我们报告了一种定制的 Cp*Co(III)(LX)催化的未活化烃(包括轻烷烃)的高效和选择性的分子间酰胺化反应。钴配合物的电子调制提高了酰胺化效率,通过对假定的钴氮宾物种的 FMO 分析,对这些效果进行了理论上的合理化。在目前的钴方案下,在各种非活化烷烃中观察到次级 C-H 键选择性,以反转内在的三级选择性,这归因于钴体系的空间位阻要求,使其难以接近三级 C-H 键。实验和计算研究表明,假定的三重态 Co 氮宾通过类似自由基的氢提取途径转移到烷烃的 C-H 键上。