Liu Xiaolu, Verma Gaurav, Chen Zhongshan, Hu Baowei, Huang Qifei, Yang Hui, Ma Shengqian, Wang Xiangke
College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China.
School of Life Science, Shaoxing University, Huancheng West Road 508, Shaoxing 312000, China.
Innovation (Camb). 2022 Jul 6;3(5):100281. doi: 10.1016/j.xinn.2022.100281. eCollection 2022 Sep 13.
Metal-organic frameworks (MOFs) have garnered multidisciplinary attention due to their structural tailorability, controlled pore size, and physicochemical functions, and their inherent properties can be exploited by applying them as precursors and/or templates for fabricating derived hollow porous nanomaterials. The fascinating, functional properties and applications of MOF-derived hollow porous materials primarily lie in their chemical composition, hollow character, and unique porous structure. Herein, a comprehensive overview of the synthetic strategies and emerging applications of hollow porous materials derived from MOF-based templates and/or precursors is given. Based on the role of MOFs in the preparation of hollow porous materials, the synthetic strategies are described in detail, including (1) MOFs as removable templates, (2) MOF nanocrystals as both self-sacrificing templates and precursors, (3) MOF@secondary-component core-shell composites as precursors, and (4) hollow MOF nanocrystals and their composites as precursors. Subsequently, the applications of these hollow porous materials for chemical catalysis, electrocatalysis, energy storage and conversion, and environmental management are presented. Finally, a perspective on the research challenges and future opportunities and prospects for MOF-derived hollow materials is provided.
金属有机框架材料(MOFs)因其结构可定制性、可控孔径和物理化学功能而受到多学科关注,并且通过将它们用作制备衍生中空多孔纳米材料的前驱体和/或模板,可以利用其固有特性。MOF衍生的中空多孔材料迷人的功能特性和应用主要在于其化学成分、中空特性和独特的多孔结构。在此,对基于MOF的模板和/或前驱体制备的中空多孔材料的合成策略和新兴应用进行了全面综述。基于MOFs在中空多孔材料制备中的作用,详细描述了合成策略,包括(1)MOFs作为可去除模板;(2)MOF纳米晶体作为自牺牲模板和前驱体;(3)MOF@二次组分核壳复合材料作为前驱体;(4)中空MOF纳米晶体及其复合材料作为前驱体。随后,介绍了这些中空多孔材料在化学催化、电催化、能量存储与转换以及环境治理方面的应用。最后,对MOF衍生中空材料的研究挑战以及未来机遇和前景进行了展望。