School of Materials Science and Engineering, Nankai University, 38 Tongyan Road, Haihe Educational Park, Tianjin, 300350, P. R. China.
State Key Laboratory of Elemento-Organic Chemistry, College of Chemistry, Nankai University, 94 Weijin Road, Tianjin, 300071, P. R. China.
Small. 2020 Dec;16(51):e2003916. doi: 10.1002/smll.202003916. Epub 2020 Nov 27.
The seriousness of the energy crisis and the environmental impact of global anthropogenic activities have led to an urgent need to develop efficient and green fuels. Hydrogen, as a promising alternative resource that is produced in an environmentally friendly and sustainable manner by a water splitting reaction, has attracted extensive attention in recent years. However, the large-scale application of water splitting devices is hindered predominantly by the sluggish oxygen evolution reaction (OER) at the anode. Therefore, the design and exploration of high-performing OER electrocatalysts is a critical objective. Considering their low prices, abundant reserves, and intrinsic activities, NiFe-based bimetal compounds are widely studied as excellent OER electrocatalysts. Moreover, recent progress on NiFe-based OER electrocatalysts in alkaline environments is comprehensively and systematically introduced through various catalyst families including NiFe-layered hydroxides, metal-organic frameworks, NiFe-based (oxy)hydroxides, NiFe-based oxides, NiFe alloys, and NiFe-based nonoxides. This review briefly introduces the advanced NiFe-based OER materials and their corresponding reaction mechanisms. Finally, the challenges inherent to and possible strategies for producing extraordinary NiFe-based electrocatalysts are discussed.
能源危机的严重性和全球人为活动对环境的影响,促使人们迫切需要开发高效、绿色的燃料。氢气作为一种有前途的替代资源,通过水分解反应以环保和可持续的方式产生,近年来引起了广泛关注。然而,水分解装置的大规模应用主要受到阳极缓慢的析氧反应(OER)的限制。因此,设计和探索高性能的 OER 电催化剂是一个关键目标。考虑到其低廉的价格、丰富的储量和内在的活性,NiFe 基双金属化合物被广泛研究作为优秀的 OER 电催化剂。此外,本文通过包括 NiFe 层状氢氧化物、金属有机骨架、NiFe 基(氧)氢氧化物、NiFe 基氧化物、NiFe 合金和 NiFe 基非氧化物在内的各种催化剂家族,全面系统地介绍了 NiFe 基 OER 电催化剂在碱性环境中的最新进展。本文简要介绍了先进的 NiFe 基 OER 材料及其相应的反应机制。最后,讨论了生产非凡的 NiFe 基电催化剂所固有的挑战和可能的策略。