Cui Xun, Wu Mingjie, Liu Xueqin, He Bing, Zhu Yunhai, Jiang Yalong, Yang Yingkui
State Key Laboratory of New Textile Materials and Advanced Processing Technologies, Wuhan Textile University, Wuhan 430200, China.
Chem Soc Rev. 2024 Feb 5;53(3):1447-1494. doi: 10.1039/d3cs00727h.
Cost-effective and high-efficiency catalysts play a central role in various sustainable electrochemical energy conversion technologies that are being developed to generate clean energy while reducing carbon emissions, such as fuel cells, metal-air batteries, water electrolyzers, and carbon dioxide conversion. In this context, a recent climax in the exploitation of advanced earth-abundant catalysts has been witnessed for diverse electrochemical reactions involved in the above mentioned sustainable pathways. In particular, polymer catalysts have garnered considerable interest and achieved substantial progress very recently, mainly owing to their pyrolysis-free synthesis, highly tunable molecular composition and microarchitecture, readily adjustable electrical conductivity, and high stability. In this review, we present a timely and comprehensive overview of the latest advances in organic polymers as emerging materials for powerful electrocatalysts. First, we present the general principles for the design of polymer catalysts in terms of catalytic activity, electrical conductivity, mass transfer, and stability. Then, the state-of-the-art engineering strategies to tailor the polymer catalysts at both molecular (, heteroatom and metal atom engineering) and macromolecular (, chain, topology, and composition engineering) levels are introduced. Particular attention is paid to the insightful understanding of structure-performance correlations and electrocatalytic mechanisms. The fundamentals behind these critical electrochemical reactions, including the oxygen reduction reaction, hydrogen evolution reaction, CO reduction reaction, oxygen evolution reaction, and hydrogen oxidation reaction, as well as breakthroughs in polymer catalysts, are outlined as well. Finally, we further discuss the current challenges and suggest new opportunities for the rational design of advanced polymer catalysts. By presenting the progress, engineering strategies, insightful understandings, challenges, and perspectives, we hope this review can provide valuable guidelines for the future development of polymer catalysts.
具有成本效益和高效率的催化剂在各种可持续电化学能量转换技术中起着核心作用,这些技术正在被开发以产生清洁能源同时减少碳排放,如燃料电池、金属空气电池、水电解槽和二氧化碳转化。在此背景下,最近见证了在上述可持续途径中涉及的各种电化学反应中,对先进的储量丰富的地球元素催化剂开发的一个高潮。特别是,聚合物催化剂最近引起了相当大的兴趣并取得了实质性进展,主要是由于其无热解合成、高度可调的分子组成和微观结构、易于调节的电导率以及高稳定性。在这篇综述中,我们及时且全面地概述了有机聚合物作为强大电催化剂新兴材料的最新进展。首先,我们从催化活性、电导率、传质和稳定性方面介绍了聚合物催化剂设计的一般原则。然后,引入了在分子(如杂原子和金属原子工程)和大分子(如链、拓扑和组成工程)水平上定制聚合物催化剂的最新工程策略。特别关注对结构 - 性能相关性和电催化机制的深刻理解。还概述了这些关键电化学反应背后的基本原理,包括氧还原反应、析氢反应、一氧化碳还原反应、析氧反应和氢氧化反应,以及聚合物催化剂方面的突破。最后,我们进一步讨论当前的挑战,并为先进聚合物催化剂的合理设计提出新的机遇。通过展示进展、工程策略、深刻理解、挑战和展望,我们希望这篇综述能为聚合物催化剂的未来发展提供有价值的指导。