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1.
在以前的工作中, 我们利用蒙特卡洛和分子动力学模拟计算了具有互穿性结构及混合配体的金属-有机骨架材料(metal-organic frameworks, MOFs)分离CH4/H2的吸附选择性及扩散选择性. 研究了材料的互穿结构及混合配体对材料用于分离CH4/H2性能的影响. 在本工作中, 我们将以前的工作进行了扩展, 详细研究了材料的互穿结构及混合配体对材料用于分离CO2/CH4, CO2/N2和CO2/H2等含有CO2的气体混合物性能的影响. 此外, 为了进一步阐明材料的结构对于其分离性能的影响, 我们亦研究了材料用于分离CH4/H2及CH4/N2. 从我们的结果可以看出, 相比无互穿结构的MOFs材料, 具有互穿结构的MOFs材料对所研究的所有混合气体的渗透选择性明显提高. 这是因为具有互穿结构的MOFs材料对混合气体的吸附选择性明显高于无互穿结构的MOFs材料. 结果表明, 如果将材料作为膜用于气体混合物分离, 使材料产生互穿结构是提高材料分离性能的一个很好的策略.  相似文献   

2.
核壳结构(core-shell)金属-有机骨架(metal-organic frameworks,MOFs)是多功能MOFs复合材料中最为典型的一类构型,是由MOFs材料和另一种材料(如MOFs、碳材料、无机化合物、有机聚合物等)组装形成的核壳结构,其中MOFs既可作核,亦可作壳。因结合了核层和壳层两种材料,核壳结构MOFs展现出了优于核层或者壳层的独特性能,例如结构稳定、选择性分离、气体吸附等,为MOFs材料实现工业化应用带来了新的潜力。本文综述了近年来核壳结构MOFs材料的研究进展,介绍了各类构型核壳结构MOFs材料(例如MOF@MOF、MOF@carbon、metal oxide@MOF、polymer@MOF等)的合成方法及应用研究,并对其今后的发展进行了展望。  相似文献   

3.
李志敏  乔宇  车广波 《化学通报》2018,81(4):297-302,348
氨基功能化金属有机骨架材料(Metal-organic frameworks,MOFs)是一种非常具有吸引力的功能化MOFs,其兼具MOFs的高比表面积、孔道易调控及氨基的可后处理修饰的性能。通过简单的化学反应可实现功能基团的转化,从而制得新型的功能化MOFs,在气体存储、药物载体、选择性吸附气体小分子和催化等领域具有潜在的应用价值,因此开发氨基功能化的MOFs备受人们关注。本文综述了近年来氨基功能化MOFs在催化和吸附领域的研究进展,包括氨基功能化MOFs的制备方法、影响因素以及在环境方面的应用,并对今后的发展前景进行了展望。  相似文献   

4.
金属有机框架材料的研究进展   总被引:1,自引:0,他引:1  
金属有机框架(metal-organic frameworks,MOFs)材料是一类由有机配体与金属中心经过自组装形成的具有可调节孔径的材料。与传统无机多孔材料相比,MOFs材料具有更大的比表面积,更高的孔隙率,结构及功能更加多样,因而已经被广泛应用于气体吸附与分离、传感器、药物缓释、催化反应等领域中。新兴材料的出现极大地促进了各个学科间的相互发展,本文综述了近年来MOFs材料的研究发展,包括MOFs材料自身的特点、国内外发展现状、应用领域以及复合MOFs材料的研究热点,并对今后的发展进行了展望。  相似文献   

5.
金属有机框架(MOFs)是一类由有机桥连配体与无机金属中心通过自组装形成的新型多孔材料.相比传统的多孔材料,MOFs具有比表面积高、孔径均一、结构可调节等优点,在基础理论研究和实际应用方面都表现出巨大的潜力.近年来,环境问题日益突出,开发新型材料解决环境问题迫在眉睫,MOFs材料在环境化学中的应用受到了广泛关注.本文主要介绍MOFs材料在催化、气体存储、气体吸附与分离、气敏传感和水体净化等多个领域的理论研究与应用现状,并进一步讨论了MOFs材料在该领域面临的挑战和发展趋势.  相似文献   

6.
李晓新  束伦  陈莎 《化学学报》2016,74(12):969-979
金属-有机骨架材料(Metal-organic frameworks,MOFs),因其具有较好的热稳定性、化学稳定性、可设计性等特点,广泛应用于气体吸附、物质分离、提纯、催化等领域,同时也作为模板制备各种功能材料.MOFs作为色谱分离的材料已得到了较多的研究与应用.按照被分离物质的类别,综述和总结了不同MOFs材料作为色谱固定相的分离效果,重点介绍了MOFs材料的色谱分离机理.MOFs材料的孔径、功能基团和不饱和金属位点在分离中起到重要的作用,最后对MOFs在色谱分离应用中的问题和前景进行了分析和展望.  相似文献   

7.
多孔金属氧化物具有高比表面积、大孔径、特殊的形貌和结构特性,广泛应用于催化、锂离子电池、太阳能电池、气敏传感器等领域。金属有机骨架材料(MOFs)是一类具有周期性网络结构的新型多孔晶体材料,在气体存储、气体分离、催化等领域具有重要的应用价值。近年来,以MOFs为前驱体制备多孔碳和多孔金属氧化物成为MOFs应用领域一个新的研究热点。本文主要综述了以MOFs为前驱体制备的多孔金属氧化物和多孔金属氧化物/碳复合物在CO氧化、催化产氢、异丁烷脱氢、环已烯氧化、醇直接氧化为酯、醛氧化酰胺化反应、光催化降解有机物和氧还原反应等方面的应用。  相似文献   

8.
李崇  李娜  常立美  谷志刚  张健 《化学学报》2022,80(3):340-358
发展高效、绿色且节能的物质分离与纯化技术具有重要意义, 气体分离更是在工业、能源、医疗及科技等领域有着广泛的应用. 传统的聚合物膜在实现高效气体分离方面还面临许多挑战, 新型分离膜材料的开发是当前研究热点和难点. 金属-有机框架(Metal-Organic Frameworks, MOFs)材料作为一种新兴多孔配位聚合物, 由于其具有独特可设计的拓扑结构以及可调节的功能而受到科学家们的广泛关注. 为了克服粉体或块体MOFs很难被高效用于气体分离的难题, 开发可用于分离的MOFs膜材料是一项具有重要意义且具有挑战性的任务. HKUST-1作为一种代表性的MOFs材料, 由于其结构稳定且原料经济并具有多级孔径的结构, 常被用作制备成膜材料用于气体分离的研究和实际应用. 总结了近十年HKUST-1膜的制备方法及其气体分离性能的研究进展, 并对这个方向的研究提出了自己的看法和展望.  相似文献   

9.
以PCN-6(Cu_(3)TATB_(2))为母体材料,Co、Fe、Mn、Zn和Ni为第2种金属,将蒸气辅助法应用于双金属有机框架材料(MOFs)的合成中,并成功制备出PCN-6(M)(M=Co/Fe/Mn/Zn/Ni)系列双金属材料,采用粉末X射线衍射仪(PXRD)、扫描电子显微镜(SEM)、能谱仪(EDS)、电感耦合等离子发射光谱仪(ICP-OES)和气体吸附等技术手段对合成的材料进行了结构、形貌、组成和性能的表征,结果表明制备的PCN-6(M)系列双金属材料的PXRD衍射峰和形貌与母体材料PCN-6一致,交换的金属在材料中分布均匀,交换量(质量分数)分别为Co:12.1%,Fe:22.0%,Mn:16.1%,Zn:17.5%,Ni:16.8%,远高于相同条件下溶剂热法的金属交换量(5%左右),在气体吸附性能方面,PCN-6(Zn)、PCN-6(Ni)和PCN-6(Co)这3种双金属材料对CH_(4)和CO_(2)的吸附能力优于母体材料,理想吸附溶液理论(IAST)计算表明,PCN-6(Fe)对CO_(2)/CH_(4)的吸附选择性优于母体材料。通过蒸气辅助法制备双金属MOFs材料,可以提高金属的交换量并改变MOFs材料对不同气体分子的亲合力,进而提高材料对气体的吸附性能和选择性。蒸气辅助法为双金属MOFs材料的制备提供了新的思路,且有望用应于其它材料的制备中。  相似文献   

10.
声表面波(surface acoustic wave,SAW)气体传感器具有灵敏度高、选择性好、响应时间短以及体积小,携带方便等优点,因而被广泛应用于环境监测、医疗卫生、化学侦检等领域中有毒有害气体的现场实时检测。敏感膜材料的特性是决定SAW传感器性能(如灵敏度、选择性、响应时间、寿命等)的关键因素。本文首先简要介绍了SAW气体传感器的响应原理和对敏感膜材料的要求,然后重点阐述了用于SAW气体传感器的有机聚合物敏感膜材料的研究进展,最后对其研究趋势做出简单预测。  相似文献   

11.
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   

12.
In this study we report the Zn/La3+ metal organic frameworks (MOFs) were synthesized with the co-precipitation assisted microwave method. Zn/La3+ MOFs were used as a new nanocomposite for the design and construction of a nanosensor based on glassy carbon electrode (GCE). MOFs due to their unique and excellent physicochemical properties can be used in sensors based on glassy carbon electrode (GCE). The synergistic effect of MOFs on glassy carbon electrode increases the power of the limits of detection (LOD). In this study, a new chemical sensor was fabricated by electro polymerization to measure buprenorphine with MOFs based on molecularly imprinted polymer. Zn/La3+ MOFs nanostructures were identified with scanning electron microscopy (SEM), Dynamic light scattering (DLS), Transmission electron microscopy (TEM) and the Fourier-transform infrared spectroscopy (FT-IR) spectra. Buprenorphine was used as a template, pyrrole was used as a monomer, potassium ferrocyanide as an electrochemical active tracer in electropolymerization processes and the parameters affecting the sensor response were optimized. At the Zn/La3+ MOF/MIP electrode, the calibration curve in the linear region was obtained in the concentration range between 4 to 50 ng/ml and the detection limit was 1.08 ng/ml. In a new strategy, Zn/La3+ MOFs nanostructures can be introduced as new materials with high efficiency which used at chemical sensors for detection of the opiates in all over the world.  相似文献   

13.
Metal–organic frameworks (MOFs) have become one of the versatile solid materials used for a wide range of applications, such as gas storage, gas separation, proton conductivity, sensors and catalysis. Among these fields, one of the more well-studied areas is the use of MOFs as heterogeneous catalysts for a broad range of organic reactions. In the present review, the employment of MOFs as solid catalysts for the Henry reaction is discussed, and the available literature data from the last decade are grouped. The review is organized with a brief introduction of the importance of Henry reactions and structural properties of MOFs that are suitable for catalysis. The second part of the review discusses the use of MOFs as solid catalysts for the Henry reaction involving metal nodes as active sites, while the third section provides data utilizing basic sites (primary amine, secondary amine, amides and urea-donating sites). While commenting on the catalytic results in these two sections, the advantage of MOFs over other solid catalysts is compared in terms of activity by providing turnover number (TON) values and the structural stability of MOFs during the course of the reaction. The final section provides our views on further directions in this field.  相似文献   

14.
《Electrophoresis》2017,38(24):3059-3078
In the field of analytical chemistry, sample preparation and chromatographic separation are two core procedures. The means by which to improve the sensitivity, selectivity and detection limit of a method have become a topic of great interest. Recently, porous organic frameworks, such as metal‐organic frameworks (MOFs) and covalent organic frameworks (COFs), have been widely used in this research area because of their special features, and different methods have been developed. This review summarizes the applications of MOFs and COFs in sample preparation and chromatographic stationary phases. The MOF‐ or COF‐based solid‐phase extraction (SPE), solid‐phase microextraction (SPME), gas chromatography (GC), high‐performance liquid chromatography (HPLC) and capillary electrochromatography (CEC) methods are described. The excellent properties of MOFs and COFs have resulted in intense interest in exploring their performance and mechanisms for sample preparation and chromatographic separation.  相似文献   

15.
金属有机框架(MOFs)是由金属离子或金属簇与有机配体通过配位作用自组装形成的一类新型多孔材料. MOFs具有独特的拓扑结构、丰富的孔隙结构、可调的孔道尺寸、巨大的比表面积以及灵活的表面修饰等特征,是色谱分离领域颇受关注的一类新型固定相. 综述了近几年MOFs材料作为固定相在气相色谱、液相色谱及手性拆分等领域应用的研究进展,展现MOFs材料在色谱分离领域的优异性能和应用潜力,并对MOFs材料在色谱固定相领域今后的发展进行了展望.  相似文献   

16.
盘盈滢  胡茜  林晓明  许旋  罗一帆 《化学通报》2020,83(10):883-890
金属–有机框架(MOFs)材料具有比表面积较大、孔径可调、制备容易、结构与功能多样性等优势,被广泛应用于电化学能源转化与储存领域。其中独特的核壳结构材料由于表面修饰的作用往往更能表现出核内与壳层的协同作用。本文介绍了具有核壳结构MOFs作为锂离子电池负极材料的发展现状,并重点综述其衍生物(多孔碳材料、金属氧化物、金属硫/硒化物以及金属/金属氧化物)的制备方法以及在锂离子电池负极中的应用。MOFs通过高温煅烧或改变化学反应条件的方法,可制备出结构可调的传统无机电极材料并表现出更优异的电化学性能。最后总结了核壳结构MOFs材料作为锂电负极材料存在的问题和挑战,并提出可能的解决途径和未来的应用前景。  相似文献   

17.
Mixed‐metal metal–organic frameworks (MM‐MOFs) can be considered to be those MOFs having two different metals anywhere in the structure. Herein we summarize the various strategies for the preparation of MM‐MOFs and some of their applications in adsorption, gas separation, and catalysis. It is shown that compared to homometallic MOFs, MM‐MOFs bring about the opportunity to take advantage of the complexity and the synergism derived from the presence of different metal ions in the structure of MOFs. This is reflected in a superior performance and even stability of MM‐MOFs respect to related single‐metal MOFs. Emphasis is made on the use of MM‐MOFs as catalysts for tandem reactions.  相似文献   

18.
This work performs a systematic computational study toward a molecular understanding of the separation characteristics of metal-organic frameworks (MOFs), for which the purification of synthetic gas by two representative MOFs, MOF-5 and Cu-BTC, is adopted as an example. The simulations show that both geometry and pore size affect largely the separation efficiency, complex selectivity behaviors with different steps can occur in MOFs, and the electrostatic interactions that exist can enhance greatly the separation efficiency of gas mixtures composed of components with different chemistries. Furthermore, the macroscopic separation behaviors of the MOF materials are elucidated at a molecular level to give insight into the underlying mechanisms. The findings as well as the molecular-level elucidations provide useful microscopic information toward a complete understanding of the separation characteristics of MOFs that may lead to general design strategies for synthesizing new MOFs with tailored properties, as well as guiding their practical applications.  相似文献   

19.
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