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1.
金属-有机骨架材料及其在催化反应中的应用   总被引:2,自引:0,他引:2  
李庆远  季生福  郝志谋 《化学进展》2012,24(8):1506-1518
金属-有机骨架(metal-organic frameworks, MOFs)材料是由金属离子和有机配体通过自组装而成的具有多孔结构的特殊晶体材料。由于其种类的多样性、孔道的可调性和结构的易功能化,已在气体的吸附和分离、催化、磁学、生物医学等领域表现出了诱人的应用前景。本文介绍了MOFs材料的类型和常用的合成方法,综述了近年来MOFs材料在催化领域的应用,特别是以MOFs材料中骨架金属作为活性中心、骨架有机配体作为活性中心和负载催化活性组分的催化反应,并对MOFs材料的催化应用趋势做了展望,以期对MOFs材料的催化性能有比较全面的认识。  相似文献   

2.
卟啉金属有机骨架材料的合成及其在催化反应中的应用   总被引:1,自引:0,他引:1  
金属有机骨架(metal-organic frameworks,MOFs)材料不仅具有非常高的孔隙率和表面积,而且其骨架结构可调控性强,容易实现功能化。功能性MOFs材料是近年发展起来的均相催化剂多相化的有效方法之一。均相催化剂金属卟啉具有很好的催化活性,卟啉构建功能性MOFs材料主要通过两种方式:一种是卟啉作为有机构筑模块制备MOFs材料,另一种是将金属卟啉封装到MOFs内部。卟啉MOFs材料因集合了MOFs的微观结构可调控性和仿酶催化剂金属卟啉的特殊催化活性而引起广泛关注。本文介绍了卟啉MOFs材料的设计合成策略及近年来卟啉MOFs材料在催化领域中的应用,并对其催化应用趋势作了展望,以期对卟啉MOFs材料的设计合成及其催化性能有比较全面的认识。  相似文献   

3.
曹琳安  魏敏 《化学学报》2022,80(7):1042-1056
电子导电金属有机框架是一类兼具导电性和多孔性的新型固体导电材料, 目前在燃料电池、电催化、超级电容器、热电、传感等电学领域得到广泛研究. 由于导电金属有机框架材料不易加工成膜, 阻碍了其在电子器件领域的进一步发展, 因此近年来导电金属有机框架薄膜及其电学性能的研究备受关注. 从电子导电金属有机框架薄膜的制备方法及其在电学领域中的应用出发, 总结了该类电学材料最新的研究进展, 并对其今后发展所面临的机遇和挑战进行了简单展望.  相似文献   

4.
多孔氢键有机骨架材料(Hydrogen-bonded Organic Frameworks,HOFs)是一类晶态的多孔聚合物,主要是由轻元素(C、H、O、N、B等)组成的有机小分子构筑单元通过氢键,π-π堆积以及范德华相互作用自组装而成。由于其具有较高的比表面积、多孔性、低密度和结构可调控等优势,兼备了金属有机骨架(MOFs,Metal Organic Frameworks)和共价有机骨架(COFs,Covalent Organic Frameworks)两类新型的多孔晶体材料的优点,近年来已经引起科学家们的广泛关注。本文从HOFs材料的基本构筑单元的设计出发,重点介绍了近几年HOFs材料在气体吸附与存储、气体分离以及传感等领域所取得的重要进展,并对该领域未来发展趋势进行了展望。  相似文献   

5.
祁晓月  李先江  白玉  刘虎威 《色谱》2016,34(1):10-15
手性现象在自然界中广泛存在,手性分离在药物研发、农用化学、药理学、环境科学和生物学等诸多领域具有重要意义。手性金属有机骨架化合物材料(MOFs)是一类具有特殊拓扑结构和可设计的孔道结构的新型多孔材料,加之其比表面积高、孔隙率大、热稳定性良好和溶剂耐受性好等特性,使得MOFs在分析化学领域的应用与研究日益深入。本文简要综述了手性MOFs的合成方法,着重讨论了手性MOFs在对映异构体选择性分离方面的应用及相关机理,最后对该类材料的发展前景做了展望。  相似文献   

6.
羧基配体金属有机骨架材料作为催化剂的研究进展   总被引:3,自引:2,他引:1  
王丽苹 《分子催化》2015,(3):275-287
<正>金属有机骨架材料(MOFs)是由无机金属中心与多齿有机配体通过配位键形成的立体网络结构多孔晶体材料[1].MOFs具有多孔性、大比表面积、结构规整、有机配体的可修饰性、金属离子的可选择性等特点,在气体吸附、气体分离、磁性材料、光学材料和催化剂等领域得到广泛的应用[2-6].尤其是在催化方面,MOFs结合了金属有机配合物和分子筛的优点,可以直接用作催化剂,也可作为催化剂载体使用.  相似文献   

7.
新型多孔材料在诸多领域具有广阔的应用前景,其发展引起了研究者较大关注.在过去的十年中,大量的先进多孔材料被设计并应用于不同领域.其中,共价有机骨架(COFs)和金属有机骨架(MOFs)材料由于具有结构多样、孔隙可调以及功能多样等独特性质,得到了广泛研究.为了有效地结合各个组分的优点以获得最优性能,科研工作者投入了大量的...  相似文献   

8.
张安  张娟 《色谱》2022,40(11):966-978
基于在碱性环境下硼酸能与顺式二醇化合物可逆共价结合形成稳定的五元或六元环酯,而在酸性环境下环酯开环释放顺式二醇化合物这一特性,设计合成高效、高选择性、高富集性能的硼亲和材料的研究备受关注。近年来,许多研究工作者合成了各种类型的硼亲和材料,应用于高选择性富集顺式二醇化合物。金属有机骨架(MOFs)和共价有机骨架(COFs)由于具有孔径可调、高孔隙率、高比表面积、骨架结构可调和化学及热稳定性良好等特点,被广泛应用于色谱分离和样品前处理领域。为赋予MOFs和COFs材料对顺式二醇化合物的富集选择性,各种不同结构和不同种类的硼酸修饰的MOFs和COFs被合成出来。该综述主要是对近几年来80余篇源于科学引文索引关于硼酸功能化MOFs和COFs的种类、合成方法及其应用文章的总结,包括“金属配体-片段共组装”“合成后修饰”和“自下而上”的硼酸功能化多孔材料的修饰策略,以及硼酸功能化MOFs和COFs的种类,介绍了其在化学分析和生物分析领域的发展概况和应用前景,客观评价了硼酸功能化MOFs和COFs的区别和优缺点。该文旨在让研究人员能够充分了解近几年硼酸功能化多孔有机骨架材料的研究现状、掌握合成思路和方法,为其应用提供一定的理论指导和技术支撑,为加快硼酸功能化多孔有机骨架材料的商业化脚步贡献绵薄之力。  相似文献   

9.
金属有机框架材料吸附性能应用的研究   总被引:1,自引:0,他引:1  
金属有机框架材料(MOFs)是一种多孔聚合物材料,其相关研究近年来取得迅速发展。MOFs是以金属离子为中心,桥连的有机配体作为支撑经延伸形成的一类具有周期性网络结构的晶态多孔材料[1]。由于其较强的功能性、较高的比表面积、超高的孔隙率以及可调控的孔道结构[2],MOFs在储气、分离、催化、载药和光学等领域受到了极大的重视,并具有广泛的应用前景。本文从MOFs材料的结构设计出发,介绍近几年MOFs材料在能源气体(H2、CH4)的储存,H2S、CO2、有机气体分子的捕集以及医学领域(对于一些药物的吸附装载)的研究进展,并对MOFs材料在应用上存在的问题进行了阐述,对其未来的发展趋势作出展望。  相似文献   

10.
金属有机骨架材料(MOFs)具有拓扑结构的多样性和丰富的比表面积,使其在催化和吸附领域具有潜在的应用价值。 双金属MOFs具有两种金属中心,较之单金属MOFs具有更加多元的催化活性位点和吸附位点,因此吸附选择性、选择催化性以及结构稳定性等均得到了提升。 本文就如何制备性能优异的双金属MOFs材料,以及这种材料的结构特点、性能提升和应用前景展开了概述。  相似文献   

11.
Metal-organic frameworks (MOFs), also known as coordination polymers, have emerged as a new class of crystalline porous materials, which are constructed from metal ions or metal ion clusters and bridging organic linkers. MOFs have tunable pores and functionalities, and usually exhibit very high surface areas. The potential applications of porous MOFs cover a broad range of fields and most of their applications are related to pore sizes, shapes and structures/environments. In this feature article, we provide an overview of the recent developments of porous MOFs as platforms in the functional applications of sorption and separation, heterogeneous catalysis, as supports/host matrices for metal nanoparticles, and as templates/nanoreactors for new material preparation.  相似文献   

12.
高效氧催化反应中的金属有机骨架材料(英文)   总被引:1,自引:0,他引:1  
氧电催化反应包括氧气还原反应(ORR)和氧气析出反应(OER).作为核心电极反应,这两个反应对诸多能源存储与转换技术(比如燃料电池、金属空气电池以及全水分解制氢等)的能量效率起决定性作用.然而,ORR和OER涉及多个反应步骤、多个电子转移过程以及多相界面传质过程.这些复杂的过程较大程度上限制了ORR和OER的反应速率.从理论和实践两个方面来看,ORR和OER都需要高效电催化剂的参与来促进其反应速率,从而能够最终提高上述能源存储与转换技术的能量转换或利用效率.目前,以Pt,Pd,Ir,Ru为代表的贵金属基电催化剂具有十分突出的电催化性能.但是,过高的成本和过低的储量始终制约着贵金属基电催化剂在催化ORR和OER反应方面,乃至在能源存储与转换技术领域的规模化应用.因而,开发高效非贵金属基氧电催化剂成为近年来能源存储与转换领域的研究重点之一.在众多已经报道的非贵金属基氧电催化剂中,金属有机骨架材料(MOFs)备受瞩目.MOFs是一类由有机配体和金属节点通过配位键自组装而成的晶态多孔材料.它们具备超高比表面积、超高孔隙率以及规则性纳米孔道.相比较其他传统的多孔材料(比如活性炭、分子筛、介孔炭、介孔氧化硅等),MOFs最主要的优势在于它们的结构和功能可以依据需求通过选择合适的有机配体和金属节点进行便利地设计,或通过后处理进行必要的改性和调节.基于独特的多孔特性以及结构与功能的可设计、可调节性,MOFs在气体分离与存储、异相催化、化学传感、药物输送、环境保护以及能源存储与转化等领域都具有潜在的应用价值.因而,近年来,MOFs备受基础研究领域和工业界的青睐.针对MOFs开展的基础研究和应用开发逐渐成为诸多领域的研究焦点.也正由于MOFs具有的上述优异特性,尤其是结构与功能的可设计、可调节性,使得设计制备基于单纯MOFs以及MOFs衍生材料成为开发高效非贵金属基氧电催化剂的新途径.本综述首先论述了基于单纯MOFs的氧电催化剂(包括纯MOFs、活性物种修饰的MOFs以及与导电材料构成的复合MOFs)的合成以及它们在ORR或OER催化反应中应用的研究进展.在第二部分论述中,本综述主要针对MOFs衍生的各类氧电催化剂(包括无机微米-纳米结构/多孔碳复合材料、纯多孔碳材料、纯无机微米-纳米结构材料以及单原子型电催化材料)的研究进展进行了简要介绍和讨论.最后,本综述对MOFs基氧电催化剂目前存在的挑战进行了简要分析;同时,也对这类氧电催化剂的通用设计准则以及未来发展方向进行了展望.尽管存在诸多挑战,MOFs始终被认为是极好的"平台"材料.充分利用它们将有利于开发高效且实用的非贵金属基氧电催化剂.  相似文献   

13.
To fulfill the demands of green and sustainable energy, the production of novel catalysts for different energy conversion processes is critical. Owing to the intriguing advantages of the intrinsic active species, tunable crystal structure, remarkable chemical and physical properties, and good stability, metal-organic frameworks (MOFs) have been extensively investigated in various electrochemical energy conversions, such as the CO2 reduction reaction, N2 reduction reaction, oxygen evolution reaction, hydrogen evolution reaction, and oxygen reduction reaction. More importantly, it is feasible to change the chemical environments, pore sizes, and porosity of MOFs, which will theoretically facilitate the diffusion of reactants across the open porous networks, thereby improving the electrocatalytic performance. However, owing to the high energy barriers of charge transfer and limited free charge carriers, most MOFs show poor electrical conductivity, thus limiting their diverse applications. As reported previously, MOFs were used as a porous substrate to confine the growth of nanoparticles or co-doped electrocatalysts after annealing. The conductive MOFs can combine the advantages of conventional MOFs with electronic conductivity, which significantly enhance the electrocatalytic performance. In addition, conductive MOFs can achieve conductivity via electronic or ionic routes without post-annealing treatment, thereby extending their potential applications. Different synthesis strategies have recently been developed to endow MOFs with electrical conductivity, such as post-synthesis modification, guest molecule introduction, and composite formatting. The performance of conductive MOFs can even outperform those of commercial RuO2 catalysts or Pt-group catalysts. However, it is difficult to endow most MOFs with high conductivity. This review summarizes the mechanisms of constructing conductive MOFs, such as redox hopping, through-bond pathways, through-space pathways, extended conjugation, and guest-promoted transport. Synthetic methods, including hydro/solvothermal synthesis and interface-assisted synthesis, are introduced. Recent advances in the use of conductive MOFs as heterogeneous catalysts in electrocatalysis have been comprehensively elucidated. It has been reported that conductive MOFs can demonstrate considerable catalytic activity, selectivity, and stability in different electrochemical reactions, revealing the immense potential for future displacement of Pt-group catalysts. Finally, the challenges and opportunities of conductive MOFs in electrocatalysis are discussed. Based on systematic synthesis strategies, more conductive MOFs can be constructed for electrocatalytic reactions. In addition, the morphology and structure of conductive MOFs, which can change the electrochemical accessibility between substrates and MOFs, are also crucial for catalysis, and thus, they should be extensively studied in the future. It is believed that a breakthrough for high-performance conductive MOF-based electrocatalysts could be achieved.  相似文献   

14.
Design, synthesis, and applications of metal–organic frameworks (MOFs) are among the most salient fields of research in modern inorganic and materials chemistry. As the structure and physical properties of MOFs are mostly dependent on the organic linkers or ligands, the choice of ligand system is of utmost importance in the design of MOFs. One such crucial organic linker/ligand is terpyridine (tpy), which can adopt various coordination modes to generate an enormous number of metal–organic frameworks. These frameworks generally carry physicochemical characteristics induced by the π-electron-rich (basically N-electron-rich moiety) terpyridines. In this minireview, the construction of 3D MOFs associated with symmetrical terpyridines is discussed. These ligands can be easily derivatized at the lateral phenyl (4′-phenyl) position and incorporate additional organic functionalities. These functionalities lead to some different binding modes and form higher dimensional (3D) frameworks. Therefore, these 3D MOFs can carry multiple features along with the characteristics of terpyridines. Some properties of these MOFs, like photophysical, chemical selectivity, photocatalytic degradation, proton conductivity, and magnetism, etc. have also been discussed and correlated with their frameworks.  相似文献   

15.
A 3D Co-based metal–organic framework ( Co-MOF ) with two kinds of large pores filled by free Co2+ ions and ligands was synthesized and characterized. To expand the MOF structure and conductivity, the free Co2+ ions and ligands were exchanged by conductive ionic liquid EtpyBr and photosensitive AgNO3 through single crystal-to-single crystal transformation, which produced structure-changed 3D MOFs Co-MOF-Br and Co-Ag-MOF , which were characterized by single-crystal X-ray diffraction. Incorporating small quantities of doped polyaniline (PANI) with redox activity into the pores could further tune the stability and conductivity of the three MOFs. The PANI/MOFs all show outstanding electrical conductivity (≈10−2 S cm−1), and PANI/ Co-MOF-Br has the largest p-type Seebeck coefficient of 66.6 μV K−1. PANI/ Co-MOF-Br and PANI/ Co-Ag-MOF have 4 and 15 times higher photocurrent density compared with PANI/ Co-MOF , respectively. This work sheds light on the design of advanced electrically conductive 3D MOFs.  相似文献   

16.
Metal-organic frameworks (MOFs) and related material classes are attracting considerable attention for applications such as gas storage, separations, and catalysis. In contrast, research focused on potential uses in electronic devices is in its infancy. Several sensing concepts in which the tailorable chemistry of MOFs is used to enhance sensitivity or provide chemical specificity have been demonstrated, but in only a few cases are MOFs an integral part of an actual device. The synthesis of a few electrically conducting MOFs and their known structural flexibility suggest that MOF-based electronic devices exploiting these properties could be constructed. It is clear, however, that new fabrication methods are required to take advantage of the unique properties of MOFs and extend their use to the realms of electronic circuitry. In this Concepts article, we describe the basic functional elements needed to fabricate electronic devices and summarize the current state of relevant MOF research, and then review recent work in which MOFs serve as active components in electronic devices. Finally, we propose a high-level roadmap for device-related MOF research, the objective of which is to stimulate thinking within the MOF community concerning the development these materials for applications including sensing, photonics, and microelectronics.  相似文献   

17.
Metal‐organic frameworks (MOFs) have been applied in various fields because of their fascinating structures and excellent properties. MOFs can serve as stationary phases in gas chromatography (GC), which has led to exceptional improvements of performance. Here, we summarize the application of MOFs in GC based on the classification of analytes. The advantages and separation mechanism of MOFs as stationary phases in GC are discussed in combination with the characteristics and structures of MOFs. The limitations are also summarized in this review, which can provide prospects on further research for the applications of MOFs.  相似文献   

18.
Two-dimensional(2D) materials showcase great potentials in both fundamental research and technology development, thanks to their unique chemical and physical properties that are usually not available in corresponding bulk counterparts. As an emerging class of 2D materials, 2D conductive metal-organic frameworks(2D c-MOFs) exhibit the characteristics of pre-designable and tunable structures, excellent crystallinity, intrinsic porosity and superior conductivity. During the past decade, 2D c-MOFs have been rapidly developed in electronics, sensors, energy storage devices, etc. In this review, the electrical, magnetic and quantum properties of 2D c-MOFs are surveyed in detail. Their applications in semiconductor, metal, superconductor, topological insulator and porous magnet are highlighted. We envision that the combination of 2D c-MOFs with quantum materials could evoke rich physics, flexible chemistry and potential applications in both electronics and spintronics.  相似文献   

19.
The utility of metal–organic frameworks (MOFs) as functional materials in electronic devices has been limited to date by a lack of MOFs that display high electrical conductivity. Here, we report the synthesis of a new electrically conductive 2D MOF, Cu3(HITP)2 (HITP=2,3,6,7,10,11‐hexaiminotriphenylene), which displays a bulk conductivity of 0.2 S cm?1 (pellet, two‐point‐probe). Devices synthesized by simple drop casting of Cu3(HITP)2 dispersions function as reversible chemiresistive sensors, capable of detecting sub‐ppm levels of ammonia vapor. Comparison with the isostructural 2D MOF Ni3(HITP)2 shows that the copper sites are critical for ammonia sensing, indicating that rational design/synthesis can be used to tune the functional properties of conductive MOFs.  相似文献   

20.
Oligothiophenes with well defined structures have recently received a great deal of attention not only as modelcompounds for electrically conducting polythiophenes but also as a new class of functional π-electron systems. A variety of oligothiophenes have been synthesized, and their molecular and crystal structures, self ordering, electrochemical, photophysical, optical and electrical properties have been studied.  相似文献   

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