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Graphite Conjugation Eliminates Redox Intermediates in Molecular Electrocatalysis

机译:石墨共轭消除了分子电催化作用中的氧化还原中间体

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The efficient interconversion of electrical and chemical energy requires the intimate coupling of electrons and small-molecule substrates at catalyst active sites. In molecular electrocatalysis, the molecule acts as a redox mediator which typically undergoes oxidation or reduction in a separate step from substrate activation. These mediated pathways introduce a high-energy intermediate, cap the driving force for substrate activation at the reduction potential of the molecule, and impede access to high rates at low overpotentials. Here we show that electronically coupling a molecular hydrogen evolution catalyst to a graphitic electrode eliminates stepwise pathways and forces concerted electron transfer and proton binding. Electrochemical and X-ray absorption spectroscopy data establish that hydrogen evolution catalysis at the graphite-conjugated Rh molecule proceeds without first reducing the metal center. These results have broad implications for the molecular-level design of energy conversion catalysts.
机译:电能和化学能的有效相互转换需要电子与小分子底物在催化剂活性位点之间紧密耦合。在分子电催化中,分子充当氧化还原介体,通常在与底物活化分开的步骤中经历氧化或还原。这些介导的途径引入了高能中间体,在分子的还原电势上限制了底物活化的驱动力,并阻碍了在低超电势下获得高速率。在这里,我们表明电子耦合分子氢生成催化剂到石墨电极消除了逐步的途径,并迫使协调的电子转移和质子结合。电化学和X射线吸收光谱数据确定,在未首先还原金属中心的情况下,进行了与石墨共轭的Rh分子的氢释放催化。这些结果对能量转化催化剂的分子级设计具有广泛的意义。

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