Effect of Components and Operating Conditions on the Performance of PEM Electrolyzers: A Review

K. W. Ahmed, M. Jang, M. Park, Zhongwei Chen, M. Fowler
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引用次数: 13

Abstract

Hydrogen is considered to be the fuel of the future and with the advancement of fuel cell technology, there is a renewed interest in hydrogen production by the electrolysis of water. Among low-temperature water electrolysis options, polymer electrolyte membrane (PEM) electrolyzer is the preferred choice due to its compact size, intermittent use, and connectivity with renewable energy. In addition, it is possible to generate compressed hydrogen directly in the PEM electrolyzer, thereby reducing the additional pressurization cost for hydrogen storage. The development of electrocatalysts for oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) is a major focus of electrolysis research. Other components, such as PEMs, gas diffusion layers (GDL), and bipolar plates (BPs) have also received significant attention to enhance the overall efficiency of PEM electrolyzers. Improvements in each component or process of the PEM electrolyzer have a significant impact on increasing the energy efficiency of the electrolyzer. This work discusses various synthesis techniques to improve the dispersion of OER electrocatalyst and reducing catalyst loading for the PEM electrolyzer. Various techniques are discussed for the development of electrocatalysts, including nanostructured, core shell, and electrodeposition to deposit catalysts on GDL. The design and methodology of new and improved GDL are discussed along with the fabrication of gas diffusion electrodes and passivation techniques to reduce the oxidation of GDL. The passivation technique of BPs using Au and Pt is summarized for its effect on electrolysis efficiency. Finally, the optimization of various operating conditions for PEM electrolyzer are reviewed to improve the efficiency of the electrolyzer.
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PEM电解槽的组成及操作条件对其性能的影响
氢被认为是未来的燃料,随着燃料电池技术的进步,人们对水电解制氢重新产生了兴趣。在低温水电解方案中,聚合物电解质膜(PEM)电解槽由于其紧凑的尺寸、间歇性使用以及与可再生能源的连接而成为首选。此外,还可以直接在PEM电解槽中产生压缩氢气,从而减少了氢气储存的额外加压成本。析氧反应(OER)和析氢反应(HER)电催化剂的开发是电解研究的热点。其他组件,如PEM、气体扩散层(GDL)和双极板(bp)也受到了极大的关注,以提高PEM电解槽的整体效率。PEM电解槽各部件或工艺的改进对提高电解槽的能量效率有重大影响。本文讨论了提高OER电催化剂分散性和减少PEM电解槽催化剂负荷的各种合成技术。讨论了发展电催化剂的各种技术,包括纳米结构、核壳和电沉积在GDL上的催化剂。讨论了新型和改进GDL的设计和方法,以及气体扩散电极的制作和钝化技术,以减少GDL的氧化。综述了铂、金钝化技术对电解效率的影响。最后对PEM电解槽各种操作条件的优化进行了综述,以提高电解槽的效率。
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6.30
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