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Molecular Design of Single-Atom Catalysts for Oxygen Reduction Reaction

机译:氧还原反应单原子催化剂的分子设计

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摘要

Fuel cells are highly attractive for direct chemical-to-electrical energy conversion and represent the ultimate mobile power supply solution. However, presently, fuel cells are limited by the sluggish kinetics of the cathodic oxygen reduction reaction (ORR), which requires the use of Pt as a catalyst, thus significantly increasing the overall cost of the cells. Recently, nonprecious metal single-atom catalysts (SACs) with high ORR activity under both acidic and alkaline conditions have been recognized as promising cost-effective alternatives to replace Pt in fuel cells. Considerable efforts have been devoted to further improving the ORR activity of SACs, including tailoring the coordination structure of the metal centers, enriching the concentration of the metal centers, and engineering the electronic structure and porosity of the substrate. Herein, a brief introduction to fuel cells and fundamentals of the ORR parameters of SACs and the origin of their high activity is provided, followed by a detailed review of the recently developed strategies used to optimize the ORR activity of SACs in both rotating disk electrode and membrane electrode assembly tests. Remarks and perspectives on the remaining challenges and future directions of SACs for the development of commercial fuel cells are also presented.
机译:燃料电池对于直接化学到电能的转换非常有吸引力,并且代表了最终的移动电源解决方案。然而,目前,燃料电池受到阴极氧还原反应(ORR)的缓慢动力学的限制,这需要使用Pt作为催化剂,因此显着增加了电池的总成本。最近,在酸性和碱性条件下具有高ORR活性的非贵金属单原子催化剂(SAC)已被公认为是有前途的具有成本效益的替代品,可替代燃料电池中的Pt。为了进一步提高SAC的ORR活性,已经做出了相当大的努力,包括定制金属中心的配位结构,丰富金属中心的浓度以及设计衬底的电子结构和孔隙率。在此,简要介绍了燃料电池和SAC的ORR参数的基本原理及其高活性的起源,然后详细回顾了最近开发的用于优化旋转盘电极和SAC的ORC活性的策略。膜电极组装测试。还介绍了SAC在商用燃料电池开发中的剩余挑战和未来方向的评论和观点。

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