化学
光电流
赤铁矿
氧化物
过渡金属
分解水
价(化学)
光谱学
价带
动力学
金属
析氧
光电化学
光化学
吸收光谱法
化学物理
渡线
可见光谱
无机化学
吸收(声学)
化学工程
表面状态
带隙
太阳能转换
X射线吸收光谱法
速率方程
作者
Tianhao He,Daniele Benetti,Cindy Tseng,Benjamin Moss,Detre Teschner,Travis E. Jones,Andreas Kafizas,Michael Grätzel,Simone Piccinin,James R. Durrant
摘要
High Resolution Image Download MS PowerPoint Slide Despite its central role in photoelectrochemical (PEC) water splitting, the mechanistic pathway of water oxidation on metal oxides remains unresolved, with population-based and Butler–Volmer (BV) models offering distinct views on how surface valence band holes drive the reaction. Here, we bring together these two perspectives by combining operando photoinduced absorption (PIA) spectroscopy with photocurrent analyses on α-Fe 2 O 3 (hematite) photoanodes as a function of light intensity. We find a crossover from population-controlled, rate law water oxidation at low hole densities to a BV-like, potential driven regime at high densities, triggered by band edge unpinning once surface M–OH species are fully oxidized, and excess holes accumulate without compensation. This mechanistic transition unifies competing models of interfacial charge transfer and reveals design principles for optimizing water oxidation in metal oxide photoelectrodes.
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