Rong Chengli, Dastafkan Kamran, Wang Yuan, Zhao Chuan
School of Chemistry, The University of New South Wales, Sydney, New South Wales, 2052, Australia.
Adv Mater. 2023 Dec;35(49):e2211884. doi: 10.1002/adma.202211884. Epub 2023 Oct 29.
Oxygen evolution reaction (OER) is a cornerstone reaction for a variety of electrochemical energy conversion and storage systems such as water splitting, CO /N reduction, reversible fuel cells, and metal-air batteries. However, OER catalysis in acids suffers from extra sluggish kinetics due to the additional step of water dissociation along with its multiple electron transfer processes. Furthermore, OER catalysts often suffer from poor stability in harsh acidic electrolytes due to the severe dissolution/corrosion processes. The development of active and stable OER catalysts in acids is highly demanded. Here, the recent advances in OER electrocatalysis in acids are reviewed and the key strategies are summarized to overcome the bottlenecks of activity and stability for both noble-metal-based and noble metal-free catalysts, including i) morphology engineering, ii) composition engineering, and iii) defect engineering. Recent achievements in operando characterization and theoretical calculations are summarized which provide an unprecedented understanding of the OER mechanisms regarding active site identification, surface reconstruction, and degradation/dissolution pathways. Finally, views are offered on the current challenges and opportunities to break the activity-stability relationships for acidic OER in mechanism understanding, catalyst design, as well as standardized stability and activity evaluation for industrial applications such as proton exchange membrane water electrolyzers and beyond.
析氧反应(OER)是各种电化学能量转换和存储系统的基础反应,如水电解、CO₂/ N₂还原、可逆燃料电池和金属空气电池。然而,由于水离解的额外步骤及其多电子转移过程,酸性条件下的OER催化动力学格外迟缓。此外,由于严重的溶解/腐蚀过程,OER催化剂在苛刻的酸性电解质中往往稳定性较差。因此,迫切需要开发在酸性条件下具有活性和稳定性的OER催化剂。在此,本文综述了酸性条件下OER电催化的最新进展,并总结了克服贵金属基和无贵金属催化剂活性和稳定性瓶颈的关键策略,包括:i)形貌工程;ii)组成工程;iii)缺陷工程。总结了原位表征和理论计算方面的最新成果,这些成果为OER机理提供了前所未有的理解,涉及活性位点识别、表面重构以及降解/溶解途径。最后,针对在机理理解、催化剂设计以及质子交换膜水电解槽等工业应用的标准化稳定性和活性评估等方面打破酸性OER活性-稳定性关系的当前挑战和机遇提出了看法。