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Low-PGM and PGM-Free Catalysts for Proton Exchange Membrane Fuel Cells: Stability Challenges and Material Solutions

机译:用于质子交换膜燃料电池的低pGM和不含PGM的催化剂:稳定性挑战和材料溶液

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摘要

Fuel cells as an attractive clean energy technology have recently regained popularity in academia, government, and industry. In a mainstream proton exchange membrane (PEM) fuel cell, platinum-group-metal (PGM)-based catalysts account for approximate to 50% of the projected total cost for large-scale production. To lower the cost, two materials-based strategies have been pursued: 1) to decrease PGM catalyst usage (so-called low-PGM catalysts), and 2) to develop alternative PGM-free catalysts. Grand stability challenges exist when PGM catalyst loading is decreased in a membrane electrode assembly (MEA)-the power generation unit of a PEM fuel cell-or when PGM-free catalysts are integrated into an MEA. More importantly, there is a significant knowledge gap between materials innovation and device integration. For example, high-performance electrocatalysts usually demonstrate undesired quick degradation in MEAs. This issue significantly limits the development of PEM fuel cells. Herein, recent progress in understanding the degradation of low-PGM and PGM-free catalysts in fuel cell MEAs and materials-based solutions to address these issues are reviewed. The key factors that degrade the MEA performance are highlighted. Innovative, emerging material concepts and development of low-PGM and PGM-free catalysts are discussed.
机译:燃料电池作为一种吸引人的清洁能源技术,最近在学术界,政府和工业中恢复了普及。在主流质子交换膜(PEM)燃料电池中,铂族金属(PGM)基于催化剂占大规模生产预计总成本的50%。为了降低成本,已经追求了两种基于材料的策略:1)减少PGM催化剂使用(所谓的低PGM催化剂)和2)以开发替代的不含PGM的催化剂。当PGM催化剂负载在膜电极组件(MEA)中降低时,存在大稳定性挑战 - PEM燃料电池的发电单元 - 或者当不含PGM的催化剂被整合到MEA中时。更重要的是,材料创新与设备集成之间存在重大知识差距。例如,高性能电催化剂通常在MEA中表现出不期望的快速降解。这个问题显着限制了PEM燃料电池的发展。在此,综述了近期了解燃料电池测量和基于材料的燃料电池测量和基于材料的解决方案中的低pGM和PGM的催化剂的降解的进展。突出显示了降低MEA性能的关键因素。讨论了创新的,新兴的材料概念和低pGM和免疫活性催化剂的发展。

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