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Stability challenges of electrocatalytic oxygen evolution reaction: From mechanistic understanding to reactor design

机译:电催化氧气进化反应的稳定性挑战:从机械理解到反应堆设计

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摘要

The electrochemical synthesis of chemicals and fuel feedstocks has been demonstrated to be a sustainable and “green” alternative to traditional chemical engineering, where oxygen evolution reaction (OER) plays a vital role in coupling with various cathodic reactions. While tremendous attention, involving both research and review topics, has been focused on pushing the limit of OER catalysts’ activity, the long-term stability of OER catalysts, which may play an even more important role in large-scale electrolysis industrialization, has been much less emphasized. Until this point, few systematic strategies for developing OER catalysts with industrially relevant durability have been reported. In this review, critical mechanisms that could influence OER stability are summarized, including surface reconstruction, lattice oxygen evolution, and the dissolution-redeposition process of catalysts. Moreover, to bridge the gap between lab-scale OER tests and large-scale electrocatalysis applications, stability considerations in electrolyzer design for long-term operation are also discussed in detail. This review provides catalyst and reactor design principles for overcoming OER stability challenges and will focus more attention from the field on the great importance of OER stability as well as future large-scale electrocatalysis applications.
机译:化学品和燃料原料的电化学合成已被证明是传统化学工程的可持续和“绿色”替代品,其中氧气进化反应(Oer)在与各种阴极反应偶联时发挥着至关重要的作用。虽然涉及研究和审查主题的巨大关注,但一直专注于推动OER催化剂活动的极限,OER催化剂的长期稳定性,这可能在大规模电解工业化中发挥更重要的作用重点不那么强调。直到这一点,已经报道了许多有利用工业相关耐用性开发奥尔催化剂的系统性战略。在本次综述中,总结了可能影响OER稳定性的关键机制,包括催化剂的表面重建,晶格氧量进化和溶解循环过程。此外,为了弥合实验室规模OER测​​试和大规模电解应用的差距,还详细讨论了用于长期操作的电解槽设计中的稳定性考虑。本综述提供了催化剂和反应堆设计原则,用于克服OER稳定性挑战,并将更多地关注OER稳定性以及未来的大型电殖分析应用。

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