Cheng Feng, Tian Tian, Wang Rui, Zhang Hao, Zhu Liyan, Tang Haolin
National Energy Key Laboratory for New Hydrogen-Ammonia Energy Technologies, Foshan Xianhu Laboratory, Foshan 528200, China.
Wuhan Institute of Hydrogen and Fuel Cell Industrial Technology, 555 Cultural Avenue, Hongshan District, Wuhan 430070, China.
Polymers (Basel). 2024 Jan 15;16(2):237. doi: 10.3390/polym16020237.
PEMWE is becoming one of the most promising technologies for efficient and green hydrogen production, while the anode OER process is deeply restricted by the now commercially used iridium oxide with sluggish reaction kinetics and super high cost. Deeply exploring the essential relationship between the underlying substrate materials and the performance of PEMWE cells while simultaneously excavating new practical and convenient methods to reduce costs and increase efficiency is full of challenges. Herein, two representative kinds of iridium oxide were studied, and their performance difference in PEMWE was precisely analyzed with electrochemical techniques and physical characterization and further linked to the ionomer/catalyst compound features. A novel anode with a uniform thin ionomer coating was successfully constructed, which simultaneously optimized the ionomer/catalyst aggregates as well as electrical conductivity, resulting in significantly enhanced PEMWE performance. This rigorous qualitative analysis of the structure-performance relationship as well as effective ionomer-affinitive optimization strategies are of great significance to the development of next-generation high-performance PEM water electrolyzers.
质子交换膜水电解槽(PEMWE)正成为高效绿色制氢最具前景的技术之一,而阳极析氧反应(OER)过程受到目前商业使用的氧化铱的严重限制,其反应动力学迟缓且成本极高。深入探索基础衬底材料与PEMWE电池性能之间的本质关系,同时挖掘新的实用便捷方法以降低成本并提高效率,充满了挑战。在此,研究了两种具有代表性的氧化铱,并用电化学技术和物理表征精确分析了它们在PEMWE中的性能差异,并进一步将其与离聚物/催化剂复合特性联系起来。成功构建了一种具有均匀薄离聚物涂层的新型阳极,同时优化了离聚物/催化剂聚集体以及电导率,从而显著提高了PEMWE的性能。这种对结构-性能关系的严格定性分析以及有效的离聚物亲和性优化策略对下一代高性能PEM水电解槽的发展具有重要意义。