Three-phase microenvironment modification by optimizing ionomer towards high-performance proton exchange membrane fuel cells

IF 39 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Jie Li, Qianli Ma, Shuda Dong, Shuang Zhao, Bo Wang and Xiao Feng
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Abstract

Proton exchange membrane fuel cells (PEMFCs) represent a promising clean and efficient energy conversion technology. Enhancing the efficiency of the oxygen reduction reaction (ORR) at the cathode is crucial for improving overall cell performance. Beyond the intrinsic activity of the catalyst, mass transport at the oxygen–water-catalyst three-phase boundary (TPB) in the catalyst layers (CLs) significantly influences ORR kinetics. Within CLs, ionomers function as both binders and proton conductors, facilitating catalyst dispersion and reducing interfacial resistance between the CL and the PEM, thereby directly impacting Pt utilization and activity. Currently, linear polymer ionomers are predominantly used owing to their high proton conductivity; however, they often impede oxygen access to catalytic sites and lack effective water management capabilities. To address these limitations, recent efforts have focused on tailoring ionomer structure to optimize the three-phase microenvironment. This review first outlines the mechanisms of proton, water, and gas transport in ionomers, followed by characterization techniques for evaluating catalyst activity, microenvironment, and mass transport within CLs. We then highlight emerging strategies to optimize Pt/ionomer interfaces through structural regulation of ionomers, additive incorporation, and rational CL design. Special attention is devoted to the open framework ionomer, which significantly enhances mass transport and promotes maximal Pt utilization. Finally, we present perspectives on the opportunities and challenges in ionomer development, with a focus on mechanistic insights and performance enhancement. We anticipate that continued progress in ionomer research will pave the way for next-generation materials, ultimately enhancing the practicality and commercial viability of hydrogen fuel cells.

Abstract Image

优化离子聚体的三相微环境改性制备高性能质子交换膜燃料电池。
质子交换膜燃料电池(pemfc)是一种很有前途的清洁、高效的能源转换技术。提高阴极氧还原反应(ORR)的效率对于提高电池的整体性能至关重要。除了催化剂的固有活性外,催化剂层(CLs)中氧-水-催化剂三相边界(TPB)处的质量传递显著影响ORR动力学。在CL中,离聚体同时充当粘合剂和质子导体,促进催化剂分散,降低CL和PEM之间的界面阻力,从而直接影响Pt的利用率和活性。目前,线性聚合物离聚体由于其高质子导电性而被广泛使用;然而,它们往往阻碍氧气进入催化位点,并且缺乏有效的水管理能力。为了解决这些限制,最近的工作集中在调整离聚体结构以优化三相微环境。本文首先概述了离子单体中质子、水和气体输运的机制,然后介绍了cl中催化剂活性、微环境和质量输运的表征技术。然后,我们重点介绍了通过结构调节、添加剂掺入和合理的CL设计来优化Pt/离聚体界面的新兴策略。特别注意的是开放框架离聚体,它显著提高了质量传递和促进最大的铂利用率。最后,我们提出了离子单体发展的机遇和挑战的观点,重点是机理见解和性能提高。我们预计,离子单体研究的持续进展将为下一代材料铺平道路,最终提高氢燃料电池的实用性和商业可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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