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1.
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   

2.
合成了一类羧基或羟基功能化的有机小分子催化剂,成功用于二氧化碳、环氧化物和芳香胺一锅法制备噁唑烷酮类化合物的制备.该催化体系具有反应条件温和、底物普适性好的优点.控制实验表明整个反应过程经过了三个阶段:环氧化物分别与二氧化碳、芳香胺反应形成环状碳酸酯、氨基醇,最终环状碳酸酯和氨基醇进一步反应形成噁唑烷酮类化合物.  相似文献   

3.
采用溶剂热法合成了三种M(HBTC)(4,4’-bipy)·3DMF (M = Ni, Co, Zn, HBTC = 1,3,5-均苯三甲酸, 4,4’-bipy = 4,4′-联吡啶)结构的支柱层金属有机骨架材料(MOFs). 首次采用溶剂热和微波法合成了Zn(HBTC)(4,4’-bipy)·3DMF, 并采用多种物理化学方法对其进行了表征. M(HBTC)(4,4’-bipy)·3DMF中包含有M2+离子的蜂窝网格层和BTC单元, BTC单元与4,4’-联吡啶柱进一步交联形成三维多孔骨架材料. 在采用烷基铵卤化物作为助催化剂和无溶剂的条件下, 所有MOFs材料均对催化固定CO2与环氧化合物环加成制备环状碳酸酯反应表现出非常好的协同催化性能, 其催化活性高低顺序为: Zn > Co >Ni, 这可通过酸-碱双功能特性进行解释. 采用微波法合成的Zn(HBTC)(4,4’-bipy)·3DMF材料表现出与常规催化剂相似的物理化学性质和催化性能. 考察了不同制备参数的影响和材料的重复使用性能, 并提出了该反应的可能机理.  相似文献   

4.
采用溶剂热法合成了三种M(HBTC)(4,4’-bipy)·3DMF(M=Ni,Co,Zn,HBTC=1,3,5-均苯三甲酸,4,4’-bipy=4,4′-联吡啶)结构的支柱层金属有机骨架材料(MOFs).首次采用溶剂热和微波法合成了Zn(HBTC)(4,4’-bipy)·3DMF,并采用多种物理化学方法对其进行了表征.M(HBTC)(4,4’-bipy)·3DMF中包含有M2+离子的蜂窝网格层和BTC单元,BTC单元与4,4’-联吡啶柱进一步交联形成三维多孔骨架材料.在采用烷基铵卤化物作为助催化剂和无溶剂的条件下,所有MOFs材料均对催化固定CO_2与环氧化合物环加成制备环状碳酸酯反应表现出非常好的协同催化性能,其催化活性高低顺序为:ZnCoNi,这可通过酸-碱双功能特性进行解释.采用微波法合成的Zn(HBTC)(4,4’-bipy)·3DMF材料表现出与常规催化剂相似的物理化学性质和催化性能.考察了不同制备参数的影响和材料的重复使用性能,并提出了该反应的可能机理  相似文献   

5.
 利用碳酸二甲酯和碳酸二乙酯进行酯交换反应制备了碳酸甲乙酯,并考察了Ti(OBu)4,Ti(OPh)4,Bu2SnO和BuSnCl3在这一反应中的催化性能. 结果表明,这些催化剂对该反应都有较好的催化性能. 其中,Bu2SnO的催化性能最好,在103 ℃下反应3 h时,碳酸甲乙酯的收率可达45.6%. 提出了Bu2SnO催化剂对碳酸二甲酯与碳酯二乙酯酯交换反应的可能机理.  相似文献   

6.
本文综述了近几年金属-有机骨架(metal-organic frameworks,MOFs)材料在催化氧化反应中的研究进展。由于MOFs材料在结构上常具有特殊活性位点、孔隙率高、比表面积大且孔尺寸与性质可调等特点,在催化上有极大的应用潜力。本文主要介绍了MOFs材料自身作为催化剂和其作为载体负载具有催化活性组分的催化氧化反应。其中,着重介绍了具有配位不饱和金属位点的MOFs和MOFs做为载体负载金属纳米颗粒、多金属氧酸盐和金属卟啉用于催化的氧化反应,包括一些有机分子如烷烃、苄基化合物、烯烃、醇、酚、硫化物和无机小分子CO、水的催化氧化,也介绍了相关仿生催化和有机染料的催化氧化。MOFs和MOFs载体的催化性能主要从稳定性、非均相性、尺寸选择性及活性位的析出四个方面进行了评价。同时,对MOFs材料在催化应用中的发展趋势作了展望。  相似文献   

7.
高文森  许瞳  白杰  李春萍 《化学通报》2023,86(2):166-172
化石燃料的燃烧产生大量二氧化碳,引起了包括温室效应在内的诸多生态环境问题。二氧化碳作为一种重要的碳资源,也可用于制备多种重要的化工原料。环氧化合物与二氧化碳环加成是二氧化碳资源化利用的重要方向,并且产物环状碳酸酯在工业上能得到广泛利用。但二氧化碳具有惰性,不易被活化,因此寻求高效且稳定的催化剂成为实现二氧化碳快速转化的关键。金属有机骨架(MOFs)因具有不饱和金属位点、多孔性等优点而被应用到各类催化反应中。又因其具有路易斯酸碱位点,对二氧化碳与环氧化物环加成反应有着突出的催化效果,所以在该反应体系中也有着出色的表现,但其反应条件比较苛刻。环氧化物的活化是在环加成反应中的重要环节,卤化物对环氧化物的活化有很好的效果,但是存在难回收的问题;卤化物阴离子还会引起含铁金属的腐蚀,在一定程度上限制了大规模工业使用。很多研究人员致力于寻找减少使用该类助剂的方法,改进催化体系,于是催生出了关于MOFs改性的各类方法。本文列举了在催化二氧化碳与环氧化物环加成反应过程中关于MOFs的利用以及改性方法,并展望了MOFs材料在催化领域的发展前景。  相似文献   

8.
鉴于一氧化碳(CO)氧化在基础研究、 环境保护和实际应用中的重要性, 人们对其进行了广泛的研究. 金属有机骨架(MOFs)由于具有永久孔隙, 结构多样且可调控, 是一种很有前途的CO氧化催化剂. 本文对近年来MOFs和MOF基催化剂用于CO氧化的研究进展进行了系统的总结, 并根据催化剂活性物种/位点进行了简要的分类介绍. 除了催化剂的化学结构, 催化剂的负载量、 制备方法和预处理技术以及反应温度等对催化性能的影响也在文中进行了讨论. 最后, 本综述对该研究领域进行了总结和展望.  相似文献   

9.
硼氢化反应,即在C=O、C=N、C=C等不饱和双键和C≡C、C≡N不饱和三键上直接引入B–H键,是制备有机硼化合物的主要方法之一.近年来,研究发现碱土金属催化剂可广泛应用于有机硼化合物的合成.本文主要介绍了近几年来碱土金属特别是镁金属催化不饱和有机化合物(醛、酮、酯、胺、吡啶、腈、烯炔和碳酸酯等)硼氢化反应的最新研究进展.  相似文献   

10.
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   

11.
Metal‐organic frameworks (MOFs) are highly promising Lewis acid catalysts; they either inherently possess Lewis acid sites (LASs) on it or the LASs can be generated through various post‐synthetic methods, the later can be performed in MOFs in a trivial fashion. MOFs are suitable platform for catalysis because of its highly crystalline and porous nature. Moreover, with recent advancements, thermal and chemical stability is not a problem with many MOFs. In this Minireview, an enormous versatility of MOFs, in terms of their microporosity/mesoporosity, size/shape selectivity, chirality, pore size, etc., has been highlighted. These are advantageous for designing and performing various targeted organic transformations. Although, many organic transformations catalyzed by MOFs with LASs have been reported in the recent past. In this Minireview, we have restricted ourselves to four important organic reactions: (i) cyanosilylation, (ii) Diels–Alder reaction, (iii) C?H activation, and (iv) CO2‐addition. The discussion focuses mostly on the recent reports (42 examples).  相似文献   

12.
Hierarchically porous metal–organic frameworks (HP‐MOFs) are promising in various applications. Most reported HP‐MOFs are prepared based on the generation of mesopores in microporous frameworks, and the formed mesopores are connected by microporous channels, limiting the accessibility of mesopores for bulky molecules. A hierarchical structure is formed by constructing microporous MOFs in uninterrupted mesoporous tunnels. Using the confined space in as‐prepared mesoporous silica, highly dispersed metal precursors for MOFs are coated on the internal surface of mesoporous tunnels. Ligand vapor‐induced crystallization is employed to enable quantitative formation of MOFs in situ, in which sublimated ligands diffuse into mesoporous tunnels and react with metal precursors. The obtained hierarchically porous composites exhibit record‐high adsorption capacity for the bulky molecule trypsin. The thermal and storage stability of trypsin is improved upon immobilization on the composites.  相似文献   

13.
BiIII‐MOFs 1 – 4 were prepared via solvothermal method using four organic linkers; 2‐mercapto‐3‐methyl‐4‐thiazoleacetic acid (H2MMTA), 2,6‐naphthalenedicarboxylic acid (2,6‐NDA), 4,6‐dihydroxy‐2‐mercaptopyrimidine (H2DMP), and 4‐mercaptobenzoic acid (H2MBA), respectively. The resulting MOFs were structurally/morphologically characterized by UV/Vis, AAS/ICP‐MS, Fourier transform infrared spectroscopy (FT‐IR), 1H NMR, thermogravimetric analysis (TGA), scanning electron microscopy (SEM), and powder X‐ray diffraction technique. All these MOFs showed good luminescence properties exhibiting blue luminescence. N2 gas adsorption isotherms of 1 – 4 confirmed the porosity of these frameworks. In order to evaluate the effect of metal ion upon chelation, the free organic linkers and respective MOFs were screened for their antibacterial potential against some pathogenic bacteria and appreciable activity was observed.  相似文献   

14.
Metal–organic frameworks (MOFs), as a porous frame material, exhibit considerable electrical conductivity. In recent decades, research on the proton conductivity of MOFs has made gratifying progress. In this review, the designable guest molecules encapsulated into MOFs are summarized and generalized into four types in terms of promoting proton conductive performance, and then recent progress in the promotion of proton conductivity by MOFs encapsulating guest molecules is discussed. The existing challenges and prospects for the development of this strategy for promoting MOFs’ proton conductivity are also listed.  相似文献   

15.
The integrated advantages of organic electrode materials and potassium metal make the organic potassium-ion batteries (OPIBs) promising secondary batteries. This review summarizes the latest research progress on OPIBs according to the different types of electrode materials (namely, organic small molecules compounds, polymers, and frameworks (metal–organic frameworks (MOFs), covalent organic frameworks (COFs)). Additionally, the research prospects and outlook for OPIBs are also provided.  相似文献   

16.
In recent years, metal–organic frameworks (MOFs) have become an area of intense research interest because of their adjustable pores and nearly limitless structural diversity deriving from the design of different organic linkers and metal structural building units (SBUs). Among the recent great challenges for scientists include switchable MOFs and their corresponding applications. Switchable MOFs are a type of smart material that undergo distinct, reversible, chemical changes in their structure upon exposure to external stimuli, yielding interesting technological applicability. Although the process of switching shares similarities with flexibility, very limited studies have been devoted specifically to switching, while a fairly large amount of research and a number of Reviews have covered flexibility in MOFs. This Review focuses on the properties and general design of switchable MOFs. The switching activity has been delineated based on the cause of the switching: light, spin crossover (SCO), redox, temperature, and wettability.  相似文献   

17.
Microporous metal–organic frameworks (MOFs) are comparatively new porous materials. Because the pores within such MOFs can be readily tuned through the interplay of both metal‐containing clusters and organic linkers to induce their size‐selective sieving effects, while the pore surfaces can be straightforwardly functionalized to enforce their different interactions with gas molecules, MOF materials are very promising for gas separation. Furthermore, the high porosities of such materials can enable microporous MOFs with optimized gas separation selectivity and capacity to be targeted. This Focus Review highlights recent significant advances in microporous MOFs for gas separation.  相似文献   

18.
Many sophisticated chemical and physical properties of porous materials strongly rely on the presence of the metal ions within the structures. Whereas homogeneous distribution of metals is conveniently realized in metal–organic frameworks (MOFs), the limited stability potentially restricts their practical implementation. From that perspective, the development of metal–covalent organic frameworks (MCOFs) may address these shortcomings by incorporating active metal species atop highly stable COF backbones. This Minireview highlights examples of MCOFs that tackle important issues from their design, synthesis, characterization to cutting-edge applications.  相似文献   

19.
Two new organic building units that contain dicarboxylate sites for their self‐assembly with paddlewheel [Cu2(CO2)4] units have been successfully developed to construct two isoreticular porous metal–organic frameworks (MOFs), ZJU‐35 and ZJU‐36, which have the same tbo topologies (Reticular Chemistry Structure Resource (RCSR) symbol) as HKUST‐1. Because the organic linkers in ZJU‐35 and ZJU‐36 are systematically enlarged, the pores in these two new porous MOFs vary from 10.8 Å in HKUST‐1 to 14.4 Å in ZJU‐35 and 16.5 Å in ZJU‐36, thus leading to their higher porosities with Brunauer–Emmett–Teller (BET) surface areas of 2899 and 4014 m2 g?1 for ZJU‐35 and ZJU‐36, respectively. High‐pressure gas‐sorption isotherms indicate that both ZJU‐35 and ZJU‐36 can take up large amounts of CH4 and CO2, and are among the few porous MOFs with the highest volumetric storage of CH4 under 60 bar and CO2 under 30 bar at room temperature. Their potential for high‐pressure swing adsorption (PSA) hydrogen purification was also preliminarily examined and compared with several reported MOFs, thus indicating the potential of ZJU‐35 and ZJU‐36 for this important application. Studies show that most of the highly porous MOFs that can volumetrically take up the greatest amount of CH4 under 60 bar and CO2 under 30 bar at room temperature are those self‐assembled from organic tetra‐ and hexacarboxylates that contain m‐benzenedicarboxylate units with the [Cu2(CO2)4] units, because this series of MOFs can have balanced porosities, suitable pores, and framework densities to optimize their volumetric gas storage. The realization of the two new organic building units for their construction of highly porous MOFs through their self‐assembly with [Cu2(CO2)4] units has provided great promise for the exploration of a large number of new tetra‐ and hexacarboxylate organic linkers based on these new organic building units in which different aromatic backbones can be readily incorporated into the frameworks to tune their porosities, pore structures, and framework densities, thus targeting some even better performing MOFs for very high gas storage and efficient gas separation under high pressure and at room temperature in the near future.  相似文献   

20.
Deposition of redox-active metal–organic frameworks (MOFs) as thin films on conductive substrates is of great importance to improve their electrochemical performance and durability. In this work, a series of metalloporphyrinic MOF crystals was successfully deposited as thin films on carbon fiber paper (CFP) substrates, which is an alternative to rigid glass substrates. The specific dimensions of the obtained films could be adjusted easily by simple cutting. Metalloporphyrinic MOFs on CFP with different active metal species have been employed for electrochemical conversion of the carcinogenic nitrite into the less toxic nitrate. The MOFs on CFP exhibit remarkable improvement in terms of the electrocatalytic performance and reusability compared with the electrodes prepared from MOF powder. The contribution from metal species of the porphyrin units and reaction mechanisms was elucidated based on the findings from X-ray photoelectron spectroscopy (XPS) and in situ X-ray absorption near edge structure (XANES) measured during the electrochemical reaction. By integrating the redox-active property of metalloporphyrinic MOFs and high conductivity of CFP, MOF thin films on CFP provided a significant improvement of electrocatalytic performance to detoxify the carcinogenic nitrite with good stability.  相似文献   

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