Department of Chemistry and Biochemistry, The Ohio State University, Columbus, Ohio43214, United States.
J Am Chem Soc. 2022 Nov 9;144(44):20267-20277. doi: 10.1021/jacs.2c06011. Epub 2022 Oct 28.
A new method to install a proton relay that enhances the reactivity near an active catalytic site for H production is reported, afforded by the electrochemical reduction and protonation of one of the ligands in the paddlewheel Rh(II,II) hydrogen evolution complex, -[Rh(DPhF)(bncn)] (; DPhF = N,'-diphenylformamidinate, bncn = benzo[]cinnoline). An electrochemical reversible prewave is observed for at potentials more positive than the first bncn-centered reduction couple in the presence of strong acids, observed at -0.72 V vs Fc (Fc = ferrocene) in the cyclic voltammograms (CVs) in DMF (0.1 M TBAPF). The origin of this prewave is shown to arise from a precatalytic transformation that originates from a concerted proton-electron transfer (CPET) event occurring at one of the bridging bncn ligands. Through electrochemical analysis, CV simulations, and electronic structure calculations, a reaction mechanism is elucidated. In this system, the electrochemically formed N-H bond on the reduced bncn ligand serves as a proton relay in the H formation reaction through a cooperative interligand pathway involving one of the bridging DPhF ligands after a second reduction step, accessible at approximately -1.15 V vs Fc. Since calculations show that hydrogen evolution takes place at the bridging ligands and does not involve the dirhodium core, it is predicted that more abundant metal centers can be incorporated into this ligand scaffold, leading to new candidates for electrocatalytic hydrogen reduction. As such, this work delineates a new design strategy to incorporate proton relays in molecular bimetallic hydrogen evolution electrocatalysts to achieve higher efficiency.
报道了一种新的质子传递方法,该方法通过电化学还原和质子化桨轮 Rh(II,II) 析氢配合物中的一个配体,-[Rh(DPhF)(bncn)](; DPhF = N,'-二苯基甲脒基,bncn =苯并[]吖啶),在靠近 H 生产的活性催化位点处增强反应性。在强酸存在下,在比第一个 bncn 中心还原对更正的电势下观察到电化学可逆的预波,在 DMF(0.1 M TBAPF)中的循环伏安法(CV)中观察到 -0.72 V 与 Fc(Fc = 二茂铁)相比。该预波的起源表明源于起源于桥接 bncn 配体之一上发生的协同质子-电子转移(CPET)事件的预催化转化。通过电化学分析、CV 模拟和电子结构计算,阐明了反应机理。在该体系中,还原的 bncn 配体上形成的电化学 N-H 键在第二个还原步骤后,通过涉及一个桥接 DPhF 配体的协同配体途径,作为 H 形成反应中的质子传递体,在大约 -1.15 V 与 Fc 相比。由于计算表明氢的析出发生在桥接配体上,并且不涉及双钌核,因此预计可以将更多丰富的金属中心纳入该配体支架中,从而为电催化析氢提供新的候选物。因此,这项工作描绘了一种在分子双金属析氢电催化剂中引入质子传递体以实现更高效率的新设计策略。