School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, Tianjin, 300350, P. R. China.
Smart Sensing Interdisciplinary Science Center, Tianjin Key Laboratory of Metal and Molecule-Based Material Chemistry, Nankai University, Tianjin, 300350, P. R. China.
Small. 2023 Apr;19(15):e2207342. doi: 10.1002/smll.202207342. Epub 2023 Jan 5.
Hydrogen, a clean and flexible energy carrier, can be efficiently produced by electrocatalytic water splitting. To accelerate the sluggish hydrogen evolution reaction and oxygen evolution reaction kinetics in the splitting process, highly active electrocatalysts are essential for lowering the energy barriers, thereby improving the efficiency of overall water splitting. Combining the distinctive advantages of metal-organic frameworks (MOFs) with the physicochemical properties of 2D materials such as large surface area, tunable structure, accessible active sites, and enhanced conductivity, 2D MOFs have attracted intensive attention in the field of electrocatalysis. Different strategies, such as improving the conductivities of MOFs, reducing the thicknesses of MOF nanosheets, and integrating MOFs with conductive particles or substrates, are developed to promote the catalytic performances of pristine MOFs. This review summarizes the recent advances of pristine 2D MOF-based electrocatalysts for water electrolysis. In particular, their intrinsic electrocatalytic properties are detailly analyzed to reveal important roles of inherent MOF active centers, or other in situ generated active phases from MOFs responsible for the catalytic reactions. Finally, the challenges and development prospects of pristine 2D MOFs for the future applications in overall water splitting are discussed.
氢是一种清洁、灵活的能源载体,可以通过电催化水分解高效产生。为了加速分解过程中缓慢的析氢反应和析氧反应动力学,高效的电催化剂对于降低能量势垒至关重要,从而提高整体水分解的效率。将金属有机骨架(MOFs)的独特优势与二维材料(如大表面积、可调结构、可及的活性位和增强的导电性)的物理化学性质相结合,二维 MOFs 在电催化领域引起了广泛关注。不同的策略,如提高 MOFs 的电导率、降低 MOF 纳米片的厚度,以及将 MOFs 与导电颗粒或基底集成,被开发来促进原始 MOFs 的催化性能。本综述总结了原始二维 MOF 基电催化剂在水电解中的最新进展。特别地,详细分析了它们的本征电催化性质,以揭示固有 MOF 活性中心或其他由 MOFs 原位生成的活性相在催化反应中的重要作用。最后,讨论了原始二维 MOFs 在未来整体水分解应用中面临的挑战和发展前景。