Departement für Chemie und Biochemie, Universität Bern, Freiestrasse 3, CH-3012 Bern, Switzerland.
Dalton Trans. 2020 Feb 14;49(6):1981-1991. doi: 10.1039/c9dt04873a. Epub 2020 Jan 27.
Pyridyl-substituted mesoionic triazolylidene ruthenium cymene complexes catalyze the oxidation of both aromatic and aliphatic amines to nitriles with high activity and selectivity under benign conditions using dioxygen as the terminal oxidant. Modification on the pyridyl moiety of the ligand scaffold has negligible effect on the catalytic performance, while substituents on the triazolylidene directly affect the catalytic fitness of the metal center, leading to distinct catalytic profiles. Pre-dissociation of the cymene ligand and formation of a solvento analogue further enhances the catalytic activity towards nitrile formation. Variation of reaction conditions provided valuable mechanistic insights and resulted in a highly efficient protocol for nitrile formation with maximum turnover numbers around 10 000. The turnover frequency reaches up to 400 h, providing one of the fastest catalytic systems known to date for this transformation.
吡啶取代的介孔三唑亚基钌翁配合物在温和条件下,以氧气为末端氧化剂,高效高选择性地催化氧化芳胺和脂肪胺为腈。配体骨架上吡啶部分的修饰对催化性能几乎没有影响,而三唑亚基上的取代基直接影响金属中心的催化适应性,导致明显不同的催化特征。翁的芐基配体的预解离和溶剂类似物的形成进一步增强了腈形成的催化活性。反应条件的变化提供了有价值的机理见解,并产生了一种高效的腈形成方法,其最大转化率数约为 10000。该转化的周转频率高达 400 h,是目前已知的最快的催化体系之一。