Chen Zhijie, Kirlikovali Kent O, Shi Le, Farha Omar K
Stoddart Institute of Molecular Science, Department of Chemistry, Zhejiang University, Hangzhou 310058, P. R. China.
Zhejiang-Israel Joint Laboratory of Self-Assembling Functional Materials, ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 311215, China.
Mater Horiz. 2023 Aug 29;10(9):3257-3268. doi: 10.1039/d3mh00541k.
Functional porous metal-organic frameworks (MOFs) have been explored for a number of potential applications in catalysis, chemical sensing, water capture, gas storage, and separation. MOFs are among the most promising candidates to address challenges facing our society related to energy and environment, but the successful implementation of functional porous MOF materials are contingent on their stability; therefore, the rational design of stable MOFs plays an important role towards the development of functional porous MOFs. In this Focus article, we summarize progress in the rational design and synthesis of stable MOFs with controllable pores and functionalities. The implementation of reticular chemistry allows for the rational top-down design of stable porous MOFs with targeted topological networks and pore structures from the pre-selected building blocks. We highlight the reticular synthesis and applications of stable MOFs: (1) MOFs based on high valent metal ions (, Al, Cr, Fe, Ti and Zr) and carboxylate ligands; (2) MOFs based on low valent metal ions (, Ni, Cu, and Zn) and azolate linkers. We envision that the synthetic strategies, including modulated synthesis and post-synthetic modification, can potentially be extended to other more complex systems like metal-phosphonate framework materials.
功能化多孔金属有机框架材料(MOFs)已被探索用于催化、化学传感、水捕获、气体储存和分离等许多潜在应用。MOFs是应对我们社会在能源和环境方面所面临挑战的最有前途的候选材料之一,但其功能化多孔MOF材料的成功应用取决于它们的稳定性;因此,稳定MOFs的合理设计对功能化多孔MOFs的发展起着重要作用。在这篇专题文章中,我们总结了具有可控孔结构和功能的稳定MOFs的合理设计与合成方面的进展。网状化学的应用使得从预先选择的构建块出发,对具有目标拓扑网络和孔结构的稳定多孔MOFs进行合理的自上而下设计成为可能。我们重点介绍了稳定MOFs的网状合成及其应用:(1)基于高价金属离子(如Al、Cr、Fe、Ti和Zr)和羧酸盐配体的MOFs;(2)基于低价金属离子(如Ni、Cu和Zn)和氮唑连接体的MOFs。我们设想,包括调制合成和后合成修饰在内的合成策略可能会扩展到其他更复杂的体系,如金属膦酸盐框架材料。