MacLeod K Cory, McWilliams Sean F, Mercado Brandon Q, Holland Patrick L
Department of Chemistry, Yale University, 225 Prospect Street, New Haven, Connecticut 06520, United States.
Chem Sci. 2016;7(9):5736-5746. doi: 10.1039/C6SC00423G. Epub 2016 Jun 14.
Reduction of N to ammonia in nature and in electrocatalysis takes place through 1-proton/1-electron steps, motivating efforts to experimentally study the steps during proton/electron transfer to well-characterized N-derived species with bridging nitrides. We report here the protonation and reduction reactions of an N-derived iron bis(nitride) complex (Rodriguez , 2011, , 780). We isolate and definitively characterize triiron imido and amido intermediates that lie along the path to ammonia formation, and Mössbauer spectroscopy shows the oxidation level of iron atoms in these mixed-valence clusters. The first two H atoms add to one of the two nitrides of the bis(nitride) complex, and the proton-coupled electron transfer in the second step can be concerted or stepwise depending on the sources of protons and electrons. The characterization of partially protonated nitrides and their mechanisms of formation are expected to guide efforts to convert N to ammonia with mild acids.
在自然界和电催化过程中,氮还原为氨是通过1个质子/1个电子的步骤进行的,这激发了人们通过实验研究质子/电子转移到具有桥连氮化物的特征明确的氮衍生物种过程中各个步骤的努力。我们在此报告一种氮衍生的双(氮化物)铁配合物的质子化和还原反应(罗德里格斯,2011年,,780)。我们分离并明确表征了沿着生成氨路径的三铁亚胺基和氨基中间体,穆斯堡尔光谱显示了这些混合价簇中铁原子的氧化态。前两个氢原子加成到双(氮化物)配合物的两个氮化物之一上,第二步中的质子耦合电子转移可以是协同的或分步的,这取决于质子和电子的来源。部分质子化氮化物的表征及其形成机制有望指导利用弱酸将氮转化为氨的研究工作。