School of Ecology and Environment, Zhengzhou University, Zhengzhou 450001, China.
School of Water Conservancy and Civil Engineering, Zhengzhou University, Zhengzhou 450001, China.
Molecules. 2023 Apr 21;28(8):3622. doi: 10.3390/molecules28083622.
Metal-organic framework (MOF) materials possess a large specific surface area, high porosity, and atomically dispersed metal active sites, which confer excellent catalytic performance as peroxide (peroxodisulfate (PDS), peroxomonosulfate (PMS), and hydrogen peroxide (HO)) activation catalysts. However, the limited electron transfer characteristics and chemical stability of traditional monometallic MOFs restrict their catalytic performance and large-scale application in advanced oxidation reactions. Furthermore, the single-metal active site and uniform charge density distribution of monometallic MOFs result in a fixed activation reaction path of peroxide in the Fenton-like reaction process. To address these limitations, bimetallic MOFs have been developed to improve catalytic activity, stability, and reaction controllability in peroxide activation reactions. Compared with monometallic MOFs, bimetallic MOFs enhance the active site of the material, promote internal electron transfer, and even alter the activation path through the synergistic effect of bimetals. In this review, we systematically summarize the preparation methods of bimetallic MOFs and the mechanism of activating different peroxide systems. Moreover, we discuss the reaction factors that affect the process of peroxide activation. This report aims to expand the understanding of bimetallic MOF synthesis and their catalytic mechanisms in advanced oxidation processes.
金属-有机骨架(MOF)材料具有大的比表面积、高的孔隙率和原子分散的金属活性位点,这赋予了其作为过氧化物(过二硫酸盐(PDS)、过一硫酸盐(PMS)和过氧化氢(HO))活化催化剂的优异催化性能。然而,传统单金属 MOF 的有限电子转移特性和化学稳定性限制了其在高级氧化反应中的催化性能和大规模应用。此外,单金属 MOF 的单金属活性位点和均匀的电荷密度分布导致在类芬顿反应过程中过氧化物的固定活化反应路径。为了解决这些限制,已经开发了双金属 MOF 以提高过氧化物活化反应中的催化活性、稳定性和反应可控性。与单金属 MOF 相比,双金属 MOF 通过双金属的协同作用增强了材料的活性位点,促进了内部电子转移,甚至改变了活化路径。在这篇综述中,我们系统地总结了双金属 MOF 的制备方法以及激活不同过氧体系的机制。此外,我们还讨论了影响过氧化物活化过程的反应因素。本报告旨在扩大对双金属 MOF 合成及其在高级氧化过程中催化机制的理解。