Bender Michael T, Choi Kyoung-Shin
Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.
JACS Au. 2022 May 3;2(5):1169-1180. doi: 10.1021/jacsau.2c00150. eCollection 2022 May 23.
Nitriles are highly important synthetic intermediates with applications in a wide variety of organic reactions including production of pharmaceuticals, fine chemicals, and agricultural chemicals. Thus, developing effective green routes to oxidize amines to nitriles is of great interest. One promising method to achieve the oxidation of primary amines to nitriles is through electrochemical oxidation on NiOOH electrodes. This reaction has long been thought to occur through an indirect mechanism consisting of a series of potential independent hydrogen atom transfer steps to catalytic Ni sites in NiOOH, which reduces NiOOH to Ni(OH). The role of the applied potential in this mechanism is simply to regenerate NiOOH by oxidizing Ni(OH). In this work, we demonstrate that a second, potential-dependent pathway recently found to apply to alcohol and aldehyde oxidation on NiOOH and consisting of potential-dependent hydride transfer to Ni sites is the dominant pathway for the oxidation of amines using propylamine and benzylamine as model systems. After qualitatively and quantitatively examining the contributions of indirect and potential-dependent oxidation pathways to amine oxidation on NiOOH, we also examine the effect the amine concentration, solution pH, applied bias, and deuterium substitution have on the two pathways, further clarifying their mechanisms and exploring what factors control their rate. This work provides a comprehensive understanding of the mechanism of primary amine oxidation on NiOOH.
腈类是非常重要的合成中间体,可应用于多种有机反应,包括制药、精细化学品和农用化学品的生产。因此,开发将胺氧化为腈的有效绿色途径备受关注。一种将伯胺氧化为腈的有前景的方法是通过在NiOOH电极上进行电化学氧化。长期以来,人们一直认为该反应是通过一种间接机制发生的,该机制由一系列与电位无关的氢原子转移步骤组成,这些步骤将氢原子转移到NiOOH中的催化Ni位点,从而将NiOOH还原为Ni(OH)。在该机制中,施加电位的作用仅仅是通过氧化Ni(OH)来再生NiOOH。在这项工作中,我们证明了最近发现的第二种与电位有关的途径,该途径适用于NiOOH上的醇和醛氧化,由与电位有关的氢化物转移到Ni位点组成,是以丙胺和苄胺为模型体系氧化胺的主要途径。在定性和定量研究了间接和与电位有关的氧化途径对NiOOH上胺氧化的贡献之后,我们还研究了胺浓度、溶液pH值、施加偏压和氘取代对这两种途径的影响,进一步阐明了它们的机制并探索了控制它们速率的因素。这项工作全面地理解了NiOOH上伯胺氧化的机制。