Observation of a Potential-Dependent Switch of Water Oxidation Mechanism on Co-Oxide-Based Catalysts

C. Lang, Jingyi Li, Ke R. Yang, Yuanxing Wang, Da He, James E. Thorne, Seth Croslow, Qi Dong, Yanyan Zhao, Gabriela Prostko, G. Brudvig, V. Batista, M. Waegele, Dunwei Wang
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引用次数: 1

Abstract

O-O bond formation is a key elementary step of the water oxidation reaction. However, it is still unclear how the mechanism of O-O coupling depends on the applied electrode potential. Herein, using water-in-salt electrolytes, we systematically altered the water activity, which enabled us to probe the O-O bond forming mechanism on heterogeneous Co-based catalysts as a function of applied potential. We discovered that the water oxidation mechanism is sensitive to the applied potential: At relatively low driving force, the reaction proceeds through an intramolecular oxygen coupling mechanism, whereas the water nucleophilic attack mechanism prevails at high driving force. The observed mechanistic switch has major implications for the understanding and control of the water oxidation reaction on heterogeneous catalysts.
基于co -氧化物的催化剂上水氧化机制电位依赖开关的观察
O-O键的形成是水氧化反应的关键基本步骤。然而,O-O耦合的机制如何取决于所施加的电极电位仍不清楚。在这里,我们使用盐中水电解质系统地改变了水活度,这使我们能够探索异相co基催化剂上O-O键形成机制作为应用电位的函数。我们发现水氧化机制对外加电位敏感:在较低驱动力下,反应通过分子内氧偶联机制进行,而在高驱动力下,反应以亲核攻击机制为主。所观察到的机理转换对于理解和控制非均相催化剂上的水氧化反应具有重要意义。
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