State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, 122 Luoshi Road, Wuhan 430070, China.
School of Materials Science and Engineering, Wuhan University of Technology, 122 Luoshi Road, Wuhan 430070, China.
Molecules. 2018 Sep 20;23(10):2413. doi: 10.3390/molecules23102413.
Transition-metal-catalyzed amide-bond formation from alcohols and amines is an atom-economic and eco-friendly route. Herein, we identified a highly active in situ -heterocyclic carbene (NHC)/ruthenium (Ru) catalytic system for this amide synthesis. Various substrates, including sterically hindered ones, could be directly transformed into the corresponding amides with the catalyst loading as low as 0.25 mol.%. In this system, we replaced the -cymene ligand of the Ru source with a relatively labile cyclooctadiene (cod) ligand so as to more efficiently obtain the corresponding poly-carbene Ru species. Expectedly, the weaker cod ligand could be more easily substituted with multiple mono-NHC ligands. Further high-resolution mass spectrometry (HRMS) analyses revealed that two tetra-carbene complexes were probably generated from the in situ catalytic system.
过渡金属催化醇和胺的酰胺键形成是一种原子经济和环保的路线。在此,我们确定了一种高效的原位杂环卡宾(NHC)/钌(Ru)催化体系用于酰胺合成。各种底物,包括位阻较大的底物,可以在催化剂负载量低至 0.25 mol%的情况下直接转化为相应的酰胺。在该体系中,我们用相对不稳定的环辛二烯(cod)配体取代 Ru 源中的 - 蒎烯配体,以便更有效地获得相应的多卡宾 Ru 物种。预期较弱的 cod 配体更容易被多个单 NHC 配体取代。进一步的高分辨率质谱(HRMS)分析表明,两个四卡宾配合物可能是由原位催化体系生成的。