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金属有机框架作为功能材料的平台

Metal-Organic Frameworks as Platforms for Functional Materials.

作者信息

Cui Yuanjing, Li Bin, He Huajun, Zhou Wei, Chen Banglin, Qian Guodong

机构信息

State Key Laboratory of Silicon Materials, Cyrus Tang Center for Sensor Materials and Applications, School of Materials Science and Engineering, Zhejiang University , Hangzhou 310027, China.

Department of Chemistry, University of Texas at San Antonio , San Antonio, Texas 78249-0698, United States.

出版信息

Acc Chem Res. 2016 Mar 15;49(3):483-93. doi: 10.1021/acs.accounts.5b00530. Epub 2016 Feb 15.

Abstract

Discoveries of novel functional materials have played very important roles to the development of science and technologies and thus to benefit our daily life. Among the diverse materials, metal-organic framework (MOF) materials are rapidly emerging as a unique type of porous and organic/inorganic hybrid materials which can be simply self-assembled from their corresponding inorganic metal ions/clusters with organic linkers, and can be straightforwardly characterized by various analytical methods. In terms of porosity, they are superior to other well-known porous materials such as zeolites and carbon materials; exhibiting extremely high porosity with surface area up to 7000 m(2)/g, tunable pore sizes, and metrics through the interplay of both organic and inorganic components with the pore sizes ranging from 3 to 100 Å, and lowest framework density down to 0.13 g/cm(3). Such unique features have enabled metal-organic frameworks to exhibit great potentials for a broad range of applications in gas storage, gas separations, enantioselective separations, heterogeneous catalysis, chemical sensing and drug delivery. On the other hand, metal-organic frameworks can be also considered as organic/inorganic self-assembled hybrid materials, we can take advantages of the physical and chemical properties of both organic and inorganic components to develop their functional optical, photonic, and magnetic materials. Furthermore, the pores within MOFs can also be utilized to encapsulate a large number of different species of diverse functions, so a variety of functional MOF/composite materials can be readily synthesized. In this Account, we describe our recent research progress on pore and function engineering to develop functional MOF materials. We have been able to tune and optimize pore spaces, immobilize specific functional groups, and introduce chiral pore environments to target MOF materials for methane storage, light hydrocarbon separations, enantioselective recognitions, carbon dioxide capture, and separations. The intrinsic optical and photonic properties of metal ions and organic ligands, and guest molecules and/or ions can be collaboratively assembled and/or encapsulated into their frameworks, so we have realized a series of novel MOF materials as ratiometric luminescent thermometers, O2 sensors, white-light-emitting materials, nonlinear optical materials, two-photon pumped lasing materials, and two-photon responsive materials for 3D patterning and data storage. Thanks to the interplay of the dual functionalities of metal-organic frameworks (the inherent porosity, and the intrinsic physical and chemical properties of inorganic and organic building blocks and encapsulated guest species), our research efforts have led to the development of functional MOF materials beyond our initial imaginations.

摘要

新型功能材料的发现对科学技术的发展起到了非常重要的作用,从而造福了我们的日常生活。在各种材料中,金属有机框架(MOF)材料正迅速崛起,成为一种独特的多孔有机/无机杂化材料,它可以简单地由其相应的无机金属离子/簇与有机连接体自组装而成,并且可以通过各种分析方法直接进行表征。在孔隙率方面,它们优于其他著名的多孔材料,如沸石和碳材料;具有极高的孔隙率,表面积可达7000 m²/g,孔径可调,通过有机和无机成分的相互作用,孔径范围为3至100 Å,最低骨架密度低至0.13 g/cm³。这些独特的特性使金属有机框架在气体存储、气体分离、对映体选择性分离、多相催化、化学传感和药物递送等广泛应用中展现出巨大潜力。另一方面,金属有机框架也可被视为有机/无机自组装杂化材料,我们可以利用有机和无机成分的物理和化学性质来开发其功能光学、光子和磁性材料。此外,MOF内部的孔隙还可用于封装大量具有不同功能的不同物种,因此可以很容易地合成各种功能性MOF/复合材料。在本综述中,我们描述了我们最近在开发功能性MOF材料的孔隙和功能工程方面的研究进展。我们已经能够调整和优化孔隙空间,固定特定的官能团,并引入手性孔隙环境,以制备用于甲烷存储、轻质烃分离、对映体选择性识别、二氧化碳捕获和分离的目标MOF材料。金属离子和有机配体以及客体分子和/或离子的固有光学和光子性质可以协同组装和/或封装到它们的框架中,因此我们已经实现了一系列新型MOF材料,如比率发光温度计、氧气传感器、白光发射材料、非线性光学材料、双光子泵浦激光材料以及用于3D图案化和数据存储的双光子响应材料。由于金属有机框架的双重功能(固有孔隙率以及无机和有机结构单元及封装客体物种的固有物理和化学性质)的相互作用,我们的研究工作带来了超出我们最初想象的功能性MOF材料的发展。

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