Selim Shababa, Pastor Ernest, García-Tecedor Miguel, Morris Madeleine R, Francàs Laia, Sachs Michael, Moss Benjamin, Corby Sacha, Mesa Camilo A, Gimenez Sixto, Kafizas Andreas, Bakulin Artem A, Durrant James R
Department of Chemistry and Centre for Plastic Electronics, MSRH, White City Campus , Imperial College London , London W12 0BZ , United Kingdom.
Institute of Advanced Materials (INAM) , Universitat Jaume I , 12006 Castelló , Spain.
J Am Chem Soc. 2019 Nov 27;141(47):18791-18798. doi: 10.1021/jacs.9b09056. Epub 2019 Nov 13.
Oxygen vacancies are ubiquitous in metal oxides and critical to performance, yet the impact of these states upon charge carrier dynamics important for photoelectrochemical and photocatalytic applications remains contentious and poorly understood. A key challenge is the unambiguous identification of spectroscopic fingerprints which can be used to track their function. Herein, we employ five complementary techniques to modulate the electronic occupancy of states associated with oxygen vacancies in situ in BiVO photoanodes, allowing us to identify a spectral signature for the ionization of these states. We obtain an activation energy of ∼0.2 eV for this ionization process, with thermally activated electron detrapping from these states determining the kinetics of electron extraction, consistent with improved photoelectrochemical performance at higher temperatures. Bulk, un-ionized states, however, function as deep hole traps, with such trapped holes energetically unable to drive water oxidation. These observations help address recent controversies in the literature regarding oxygen vacancy function, providing new insights into their impact upon photoelectrochemical performance.
氧空位在金属氧化物中普遍存在且对性能至关重要,然而这些状态对光电化学和光催化应用中重要的电荷载流子动力学的影响仍存在争议且了解不足。一个关键挑战是明确识别可用于追踪其功能的光谱指纹。在此,我们采用五种互补技术原位调节BiVO光阳极中与氧空位相关的态的电子占据情况,从而使我们能够识别这些态电离的光谱特征。我们获得了该电离过程约0.2 eV的活化能,热激活的电子从这些态脱陷决定了电子提取的动力学,这与在较高温度下改善的光电化学性能一致。然而,体相的未电离态充当深空穴陷阱,这些被俘获的空穴在能量上无法驱动水氧化。这些观察结果有助于解决文献中最近关于氧空位功能的争议,为它们对光电化学性能的影响提供了新的见解。