Chemical oxygen species on electrocatalytic materials during oxygen evolution reaction

Yaming Hao , Xueting Cao , Can Lei , Zhe Chen , Xuejing Yang , Ming Gong
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Abstract

Oxygen evolution reaction (OER) is a crucial half-reaction in electrochemical water splitting, and efficient and durable electrocatalysts are required to improve the sluggish OER kinetics. However, the inevitable formation of chemical oxygen species (COSs) in the OER process heavily impacts the reaction pathway and kinetics. Precisely identifying the COSs generated during OER and acknowledging their chemo-reactivity is highly beneficial for understanding the OER mechanism and facilitating the rational design of advanced catalysts. One of the major challenges in probing the COSs is the detection of COSs under working conditions due to the transient nature and relative low coverage. This review summarizes various COSs detected on different OER electrocatalysts, including adsorbed hydroxyl (M-OH*), adsorbed oxygen (M-O*), adsorbed superoxide intermediates (M-OOH* and M-OOn-*). With these COSs probed, the possible OER mechanisms with the inter-conversion of these COSs are described. Additionally, the detailed in situ techniques for characterizing specific COSs are also introduced. Finally, we discuss remaining challenges in identifying the COSs and provide some perspectives for the design of next-generation OER electrocatalysts. By emphasizing the COSs during OER, we aim to provide vivid images of the OER transformations on the atomic scales and encourage more studies on correlating the atomic pictures of OER pathways with the active sites as well as catalyst structures.

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析氧反应中电催化材料上的化学氧
析氧反应(OER)是电化学水分解中至关重要的半反应,需要高效耐用的电催化剂来改善缓慢的OER动力学。然而,在OER过程中不可避免地形成化学氧(COS),严重影响了反应途径和动力学。准确识别OER过程中产生的COS并确认其化学反应性,对于理解OER机制和促进先进催化剂的合理设计非常有益。探测COS的主要挑战之一是由于瞬态性质和相对低的覆盖率,在工作条件下检测COS。本文综述了在不同OER电催化剂上检测到的各种COS,包括吸附羟基(M-OH*)、吸附氧(M-O*)和吸附超氧化物中间体(M-OOH*和M-OOn-*)。随着这些COS的探测,描述了这些COS相互转化的可能OER机制。此外,还介绍了表征特定COS的详细原位技术。最后,我们讨论了识别COS的剩余挑战,并为下一代OER电催化剂的设计提供了一些前景。通过强调OER过程中的COS,我们旨在提供原子尺度上OER转化的生动图像,并鼓励更多研究OER途径的原子图像与活性位点以及催化剂结构的相关性。
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