Affiliation:
1. Joint International Research Laboratory of Advanced Chemical Catalytic Materials & Surface Science College of Chemistry and Chemical Engineering Northeast Petroleum University Daqing 163318 P. R. China
2. School of Chemistry and Chemical Engineering Yangzhou University Yangzhou 225002 P. R. China
3. Department of Chemistry Queen's University Kingston ON K7L 3N6 Canada
4. National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei 230029 P. R. China
Abstract
AbstractA fundamental understanding of metal active sites in single‐atom catalysts (SACs) is important and challenging in the development of high‐performance catalyst systems. Here, a highly efficient and straightforward molten‐salt‐assisted approach is reported to create atomically dispersed cobalt atoms supported over vanadium pentoxide layered material, with each cobalt atom coordinated with four neighboring oxygen atoms. The liquid environment and the strong polarizing force of the molten salt at high temperatures potentially favor the weakening of VO bonding and the formation of CoO bonding on the vanadium oxide surface. This cobalt SAC achieves extraordinary catalytic efficiency in acceptorless dehydrogenative coupling of alcohols with amines to give imines, with more than 99% selectivity under almost 100% conversion within 3 h, along with a high turnover frequency (TOF) of 5882 h−1, exceeding those of previously reported benchmarking catalysts. Moreover, it delivers excellent recyclability, reaction scalability, and substrate tolerance. Density functional theory (DFT) calculations further confirm that the optimized coordination environment and strong electronic metal‐support interaction contribute significantly to the activation of reactants. The findings provide a feasible route to construct SACs at the atomic level for use in organic transformations.
Subject
Biomaterials,Biotechnology,General Materials Science,General Chemistry
Cited by
17 articles.
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