Grose Laura A, Zhang Yi, Oultram Samuel, Schwamm Ryan J, de Visser Sam P, Willcox Darren
Department of Chemistry, The University of Manchester, Oxford Road, Manchester, M13 9PL, UK.
Department of Chemical Engineering, The University of Manchester, Oxford Road, Manchester, M13 9PL, UK.
Chemistry. 2025 Jul 22;31(41):e202501782. doi: 10.1002/chem.202501782. Epub 2025 Jul 2.
Reductive amination is a challenging reaction in catalysis that often gives poor yield and selectivity. We present an iron-catalyzed approach of synthesizing amines through reduction of nitriles through hydroboration with good yield under ambient conditions. Our detailed mechanistic study establishes the factors that influence the selectivity and turnover. The kinetics and mechanism of the iron-catalyzed hydroboration of benzonitrile to bis(boryl)benzylamine have been investigated by initial rates, temperature dependence, kinetic isotope effects, and computational studies. In contrast to other iron-catalyzed nitrile hydroboration, this study reveals that B─H bond activation is not rate-determining. Moreover, the rate-determining step was revealed to be C─H bond reductive elimination with an equilibrium isotope effect in operation. Through this combined approached, an Fe(0)/(II) catalytic manifold proceeding via metal-ligand cooperativity has been determined.
还原胺化反应是催化领域中一项具有挑战性的反应,其产率和选择性往往较低。我们提出了一种铁催化的方法,即在环境条件下通过硼氢化还原腈来合成胺,该方法具有良好的产率。我们详细的机理研究确定了影响选择性和周转率的因素。通过初始速率、温度依赖性、动力学同位素效应和计算研究,对铁催化苯甲腈硼氢化生成双(硼基)苄胺的动力学和机理进行了研究。与其他铁催化的腈硼氢化反应不同,本研究表明B─H键活化不是速率决定步骤。此外,速率决定步骤被揭示为C─H键还原消除,并存在平衡同位素效应。通过这种综合方法,确定了一种通过金属-配体协同作用进行的Fe(0)/(II)催化歧管。