Miu Evan V, McKone James R, Mpourmpakis Giannis
Department of Chemical & Petroleum Engineering, University of Pittsburgh, Pittsburgh, Pennsylvania 15213, United States.
J Am Chem Soc. 2022 Apr 13;144(14):6420-6433. doi: 10.1021/jacs.2c00825. Epub 2022 Mar 15.
Metal oxides are attracting increased attention as electrocatalysts owing to their affordability, tunability, and reactivity. However, these materials can undergo significant chemical changes under reaction conditions, presenting challenges for characterization and optimization. Herein, we combine experimental and computational methods to demonstrate that bulk hydrogen intercalation governs the activity of tungsten trioxide (WO) toward the hydrogen evolution reaction (HER). In contrast to the focus on surface processes in heterogeneous catalysis, we demonstrate that bulk oxide modification is responsible for experimental HER activity. Density functional theory (DFT) calculations reveal that intercalation enables the HER by altering the acid-base character of surface sites and preventing site blocking by hydration. First-principles microkinetic modeling supports that the experimental HER rates can only be explained by intercalated HWO, whereas nonintercalated WO does not catalyze the HER. Overall, this work underscores the critical influence of hydrogen intercalation on aqueous cathodic electrocatalysis at metal oxides.
金属氧化物因其价格低廉、可调节性和反应活性,作为电催化剂正吸引着越来越多的关注。然而,这些材料在反应条件下会发生显著的化学变化,这给表征和优化带来了挑战。在此,我们结合实验和计算方法,证明大量氢嵌入控制着三氧化钨(WO)对析氢反应(HER)的活性。与多相催化中对表面过程的关注不同,我们证明大量氧化物改性是实验性HER活性的原因。密度泛函理论(DFT)计算表明,嵌入通过改变表面位点的酸碱性质并防止水合作用导致的位点阻塞来实现HER。第一性原理微观动力学模型支持,实验性HER速率只能由嵌入H的WO来解释,而非嵌入的WO则不能催化HER。总体而言,这项工作强调了氢嵌入对金属氧化物水相阴极电催化的关键影响。