Tang Jiayi, Su Chao, Shao Zongping
WA School of Mines: Minerals, Energy and Chemical Engineering (WASM-MECE) Curtin University Perth Western Australia Australia.
School of Energy and Power Jiangsu University of Science and Technology Zhenjiang China.
Exploration (Beijing). 2023 Oct 20;4(1):20220112. doi: 10.1002/EXP.20220112. eCollection 2024 Feb.
Researchers have been seeking for the most technically-economical water electrolysis technology for entering the next-stage of industrial amplification for large-scale green hydrogen production. Various membrane-based electrolyzers have been developed to improve electric-efficiency, reduce the use of precious metals, enhance stability, and possibly realize direct seawater electrolysis. While electrode engineering is the key to approaching these goals by bridging the gap between catalysts design and electrolyzers development, nevertheless, as an emerging field, has not yet been systematically analyzed. Herein, this review is organized to comprehensively discuss the recent progresses of electrode engineering that have been made toward advanced membrane-based electrolyzers. For the commercialized or near-commercialized membrane electrolyzer technologies, the electrode material design principles are interpreted and the interface engineering that have been put forward to improve catalytic sites utilization and reduce precious metal loading is summarized. Given the pressing issues of electrolyzer cost reduction and efficiency improvement, the electrode structure engineering toward applying precious metal free electrocatalysts is highlighted and sufficient accessible sites within the thick catalyst layers with rational electrode architectures and effective ions/mass transport interfaces are enabled. In addition, this review also discusses the innovative ways as proposed to break the barriers of current membrane electrolyzers, including the adjustments of electrode reaction environment, and the feasible cell-voltage-breakdown strategies for durable direct seawater electrolysis. Hopefully, this review may provide insightful information of membrane-based electrode engineering and inspire the future development of advanced membrane electrolyzer technologies for cost-effective green hydrogen production.
研究人员一直在寻找技术经济上最可行的水电解技术,以进入大规模绿色制氢的下一阶段工业放大生产。已经开发了各种基于膜的电解槽,以提高电效率、减少贵金属的使用、增强稳定性,并有可能实现直接海水电解。虽然电极工程是通过弥合催化剂设计和电解槽开发之间的差距来实现这些目标的关键,但作为一个新兴领域,尚未得到系统分析。在此,本综述旨在全面讨论电极工程在先进的基于膜的电解槽方面取得的最新进展。对于商业化或接近商业化的膜电解槽技术,解释了电极材料的设计原则,并总结了为提高催化位点利用率和减少贵金属负载而提出的界面工程。鉴于降低电解槽成本和提高效率的紧迫问题,重点介绍了应用无贵金属电催化剂的电极结构工程,并在具有合理电极结构和有效离子/质量传输界面的厚催化剂层中实现了足够的可及位点。此外,本综述还讨论了为突破当前膜电解槽的障碍而提出的创新方法,包括电极反应环境的调整,以及用于持久直接海水电解的可行的电池电压击穿策略。希望本综述能为基于膜的电极工程提供有见地的信息,并激发先进膜电解槽技术未来的发展,以实现具有成本效益的绿色制氢。