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共价有机框架(covalent organic framework, COF)是一种由轻质元素(C、H、O和N)以共价键的形式连接组成的结晶多孔聚合物,由于其具有规则的孔道、可修饰的骨架以及良好的稳定性而被广泛应用于不同的领域.尤其是将含氮的功能基团连接到COF的骨架中,可以为其吸附特定的染料提供丰富的活性位点.基于此,本工作成功制备了一种酰胺功能化的二维共价有机框架材料(JUC-578),通过一系列的表征证明了该材料具有高的结晶度、均一规整的形貌以及开放的一维介孔孔道.更重要的是,发现JUC-578可以选择性地吸附阳离子染料,并且可以多次循环利用.这主要归因于骨架中的氮作为电子给体与缺电子的染料之间的静电作用以及其他弱相互作用(氢键、偶联作用等).与此同时,JUC-578高的结晶度和有序的孔道也是实现可逆吸附染料非常重要的因素. 相似文献
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以2,4,6-三甲基苯-1,3,5-三甲醛和2,5-二甲基对苯二胺作为单体构建了一种新型的甲基化共价有机框架材料(COF-946)。利用傅里叶变换红外光谱仪(FT-IR)、粉末X射线衍射仪(PXRD)、氮气吸附/脱附等温线、扫描电子显微镜(SEM)和透射电子显微镜(TEM)等对COF-946的基础结构和性能进行了表征。结果表明:COF-946具有较高的碘蒸气吸附量(5.65 g/g)和吸附速率(0.78 g/(g·h)),并且在经历了5次循环后依旧可以保持90%以上的原始吸附能力。 相似文献
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以三醛基间苯三酚(TFP)和溴化乙锭(EB)为单体, 在溶剂热条件下合成了一种二维β-酮烯胺类阳离子型共价有机框架(COF)材料. 所得TFP-EB COF呈现出良好的结晶度、 高的比表面积和丰富的溴化乙锭单元, 故可将其应用于水中非甾体抗炎药(NSAIDs)的去除.阳离子TFP-EB COF对双氯芬酸钠(DCF-S)和对氨基水杨酸钠(PAS-S)两种非甾体抗炎药表现出高的吸附能力和快的吸附动力学, 其饱和吸附容量分别可达350.4和145.3 mg/g. 而采用TFP与4,4'-二氨基联苯(BND)在类似条件下合成的中性TFP-BND COF则表现出较差的吸附性能, 其对DCF-S和PAS-S的饱和吸附容量分别仅有59.7和13.6 mg/g. TFP-EB COF的吸附性能比TFP-BND COF更优异, 这主要归因于TFP-EB COF孔道中存在的大量阳离子EB单元与NSAIDs中的羧基间存在强烈的静电作用. 此外, 竞争离子干扰和循环再生实验表明阳离子型TFP-EB COF在NSAIDs污染物的去除方面具有良好的应用前景. 相似文献
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共价有机框架(Covalent Organic Frameworks, COFs)是一类通过可逆反应制备的具有长程有序结构的晶态有机多孔聚合物,因其良好的耐辐照性、结构可设计性及可功能化特点有望在放射性核素高效吸附及作用机理探讨中发挥作用。但连接键可逆性降低了COFs的化学稳定性,本文系统地综述了COFs化学稳定性提高(包括连接键可逆性的降低、合成后可逆连接键向不可逆转化及连接键周围疏水环境构建)、晶型调控(包括合成条件、二维COFs层内共平面及层间堆叠作用力的影响及无定形聚合物结晶化)、功能化方法和其在放射性核素分离富集方面中的应用。通过增强COFs骨架的强度,引入特殊的功能化官能团或改变单体大小通过尺寸匹配效应来增强放射性核素离子与COFs的相互作用,并就COFs在该领域应用前景和研究方向进行了展望。 相似文献
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共价有机框架材料(COFs)由C、H、N、O等轻质元素组成,是一种通过共价键连接的晶型材料。近十年来发展迅速,受到研究人员的密切关注。COFs具有良好的稳定性、低密度、规则有序的孔道结构、结构的可预测性和可设计性等优点,被广泛应用到吸附、催化、储能、生物传感器和荧光识别等重要领域,但其存在合成困难、合成方法有限等问题。文章回顾了COFs材料的发展背景,选取吸附、催化、储能这三个方面的应用进行详细说明,分析COFs材料能被应用到这三个领域的原因,列举最新的研究成果,并阐述了COFs与特定分子结合在不同条件下应用的机理,总结各领域应用的异同,分析在应用中存在的主要问题。最后,对于COFs材料自身以及在应用中存在的问题提出针对性的建议。 相似文献
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通过三醛基间苯三酚(TFP)与2,2′-联苯胺二磺酸(BDSA)的席夫碱反应, 合成了β-酮烯胺连接的磺酸功能化球形共价有机框架(TFP-BDSA COF). 所得阴离子型TFP-BDSA可迅速吸附如亚甲基蓝(MLB)、 结晶紫(CV)和罗丹明B(RhB)等阳离子染料, 而对如甲基橙(MO)和荧光素钠(FS)等阴离子染料则难以吸附, 该COF可实现基于电荷模式的阴离子、 阳离子染料的分离. TFP-BDSA对阳离子染料的吸附动力学均遵循拟二级吸附动力学模型, 吸附过程符合Langmuir吸附模型, 其对MLB, CV和RhB的最大吸附容量分别高达1116, 1429和1638 mg/g. 与其它COFs材料相比, TFP-BDSA对CV和RhB的吸附容量最高. 该工作可为开发功能COFs材料实现对废水中有机污染物的快速吸附和有效去除提供参考. 相似文献
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Soraia P. S. Fernandes Dr. Vanesa Romero Dr. Begoña Espiña Dr. Laura M. Salonen 《Chemistry (Weinheim an der Bergstrasse, Germany)》2019,25(26):6461-6473
Covalent organic frameworks (COFs) are attractive materials receiving increasing interest in the literature due to their crystallinity, large surface area, and pore uniformity. Their properties can be tailored towards specific applications by judicious design of COF building blocks, giving access to tailor-made pore sizes and surfaces. In this Concept article, developments in the field of COFs that have allowed these materials to be explored for contaminant adsorption are discussed. Strategies to obtain water-stable materials with highly ordered structures and large surface areas are reviewed. Post-synthetic modification approaches, by which pore surfaces can be tuned to target specific contaminants, are described. Recent advances in COF formulations, crucial for future implementation in adsorption devices, are highlighted. At the end, future challenges which need to be addressed to allow for the deployment of COFs for the capture of water contaminants will be discussed. 相似文献
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共价有机框架(Covalent Organic Frameworks, COFs)是一种新型的多孔材料,具有结构规整、骨架稳定、孔径结构可调等特点,被视为固定化酶的理想载体。我们主要总结了近10年来COFs材料作为载体,通过物理吸附、共价连接、包埋的固定化策略制备固定化酶的研究进展与应用,并讨论了COFs材料在酶固定化领域所面临的机遇和挑战。 相似文献
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Johannes Maschita Dr. Tanmay Banerjee Gökcen Savasci Dr. Frederik Haase Prof. Christian Ochsenfeld Prof. Bettina V. Lotsch 《Angewandte Chemie (Weinheim an der Bergstrasse, Germany)》2020,132(36):15880-15888
Covalent organic frameworks (COFs) are an extensively studied class of porous materials, which distinguish themselves from other porous polymers in their crystallinity and high degree of modularity, enabling a wide range of applications. COFs are most commonly synthesized solvothermally, which is often a time-consuming process and restricted to well-soluble precursor molecules. Synthesis of polyimide-linked COFs (PI-COFs) is further complicated by the poor reversibility of the ring-closing reaction under solvothermal conditions. Herein, we report the ionothermal synthesis of crystalline and porous PI-COFs in zinc chloride and eutectic salt mixtures. This synthesis does not require soluble precursors and the reaction time is significantly reduced as compared to standard solvothermal synthesis methods. In addition to applying the synthesis to previously reported imide COFs, a new perylene-based COF was also synthesized, which could not be obtained by the classical solvothermal route. In situ high-temperature XRPD analysis hints to the formation of precursor–salt adducts as crystalline intermediates, which then react with each other to form the COF. 相似文献
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Dr. Ya Du Dr. Haishen Yang Justin Michael Whiteley Dr. Shun Wan Dr. Yinghua Jin Prof. Dr. Se‐Hee Lee Prof. Dr. Wei Zhang 《Angewandte Chemie (International ed. in English)》2016,55(5):1737-1741
A novel type of ionic covalent organic framework (ICOF), which contains sp3 hybridized boron anionic centers and tunable countercations, was constructed by formation of spiroborate linkages. These ICOFs exhibit high BET surface areas up to 1259 m2 g?1 and adsorb a significant amount of H2 (up to 3.11 wt %, 77 K, 1 bar) and CH4 (up to 4.62 wt %, 273 K, 1 bar). Importantly, the materials show good thermal stabilities and excellent resistance to hydrolysis, remaining nearly intact when immersed in water or basic solution for two days. The presence of permanently immobilized ion centers in ICOFs enables the transportation of lithium ions with room‐temperature lithium‐ion conductivity of 3.05×10?5 S cm?1 and an average Li+ transference number value of 0.80±0.02. Our approach thus provides a convenient route to highly stable COFs with ionic linkages, which can potentially serve as absorbents for alternative energy sources such as H2, CH4, and also as solid lithium electrolytes/separators for the next‐generation lithium batteries. 相似文献
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Hui-Chao Ma Jie Zou Xue-Tian Li Dr. Gong-Jun Chen Prof. Yu-Bin Dong 《Chemistry (Weinheim an der Bergstrasse, Germany)》2020,26(61):13754-13770
Owing to their permanent porosity, highly ordered and extended structure, good chemical stability, and tunability, covalent organic frameworks (COFs) have emerged as a new type of organic materials that can offer various applications in different fields. Benefiting from the huge database of organic reactions, the required functionality of COFs can be readily achieved by modification of the corresponding organic functional groups on either polymerizable monomers or established COF frameworks. This striking feature allows homochiral covalent organic frameworks (HCCOFs) to be reasonably designed and synthesized, as well as their use as a unique platform to fabricate asymmetric catalysts. This contribution provides an overview of new progress in HCCOF-based asymmetric catalysis, including design, synthesis, and their application in asymmetric organic synthesis. Moreover, major challenges and developing trends in this field are also discussed. It is anticipated that this review article will provide some new insights into HCCOFs for heterogeneous asymmetric catalysis and help to encourage further contributions in this young but promising field. 相似文献
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Dr. Yuling Zhao Yue Zhao Dr. Cailing Wu Dr. Jikuan Qiu Dr. Huiyong Wang Dr. Zhiyong Li Prof. Yang Zhao Prof. Jianji Wang 《Chemistry (Weinheim an der Bergstrasse, Germany)》2021,27(36):9391-9397
As an important member of crystalline porous polymers, acylhydrazone-linked covalent organic frameworks (COFs) have gained much attention in recent years. However, the low structural stability imparts a limit on their practical applications. To tackle this problem, we report a simple strategy to increase the chemical stability of acylhydrazone-linked COFs by incorporating azobenzene groups in the conjugated framework. Through reinforcing the π-π stacking interactions between the adjacent layers with increased π-surface, it is surprising to find that the resulting materials exhibit extreme stability in harsh environments, such as in strong acid, strong base, aqueous educing agent and boiling water, even exposed to air for one year. As a proof-of-concept, such frameworks have been used to remove various organic micropollutants such as antibiotics, plastic components, endocrine disruptors, and carcinogens from water with high capacity, fast speed and excellent reusability over a wide pH range at environmentally relevant concentrations. The results provide a new avenue to significantly enhance the stability of COFs for practical applications. 相似文献
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共价有机框架材料(covalent organic frameworks, COF)是功能材料领域研究的热点之一。COF具有孔道结构高度有序、孔径可调、比表面积较大、合成方法多样和易于功能化修饰等优点,是一类新兴的多相催化剂。目前,COF催化剂主要设计思路是:基于“自下而上”策略将非金属催化活性中心嵌入材料骨架来构筑本征型COF催化剂,或者以COF为载体,通过后修饰方式负载金属颗粒或离子构建多相催化剂。鉴于COF以上优势,预计COF催化剂在多相催化和手性催化领域中的应用也将取得更大的进展。本文综述了COF催化剂的合成和功能化策略,并展望了COF在多相催化领域中的应用前景。 相似文献
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Jinwei Zhao Junyu Ren Dr. Guang Zhang Dr. Ziqiang Zhao Prof. Shiyong Liu Prof. Wandong Zhang Prof. Long Chen 《Chemistry (Weinheim an der Bergstrasse, Germany)》2021,27(42):10781-10797
Intermolecular charge transfer (ICT) effect has been widely studied in both small molecules and linear polymers. Covalently-bonded donor-acceptor pairs with tunable bandgaps and photoelectric properties endow these materials with potential applications in optoelectronics, fluorescent bioimaging, and sensors, etc. However, owing to the lack of charge transfer pathway or effective separation of charge carriers, unfavorable charge recombination gives rise to inevitable energy loss. Covalent organic frameworks (COFs) can be mediated with various geometry- and property-tailored building blocks, where donor (D) and acceptor (A) segments are connected by covalent bonds and can be finely arranged to form highly ordered networks (namely D−A COFs). The unique structural features of D−A COFs render the formation of segregated D−A stacks, thus provides pathways and channels for effective charge carriers transport. This review highlights the significant progress on D−A COFs over the past decade with emphasis on design principles, growing structural diversities, and promising application potentials. 相似文献
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以自制的磁性共价有机框架材料(COF)为吸附剂,采用静态吸附法研究了其对甲基橙(MO)和茜素绿(AG-25)的吸附行为。 结果表明,在25 ℃,pH值6~8的条件下,磁性COF对两种阴离子染料的的吸附量分别为997和1314 mg/g。 两种染料的吸附等温线符合Langmuir等温吸附模型,表明吸附过程为单层吸附;吸附动力学均符合准二级动力学模型,说明吸附过程以化学吸附为主。 磁性COF对水体中的阴离子染料体现出高吸附量和快速吸附的特点,具有潜在的价值。 相似文献
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Johannes Maschita Tanmay Banerjee Gkcen Savasci Frederik Haase Christian Ochsenfeld Bettina V. Lotsch 《Angewandte Chemie (International ed. in English)》2020,59(36):15750-15758
Covalent organic frameworks (COFs) are an extensively studied class of porous materials, which distinguish themselves from other porous polymers in their crystallinity and high degree of modularity, enabling a wide range of applications. COFs are most commonly synthesized solvothermally, which is often a time‐consuming process and restricted to well‐soluble precursor molecules. Synthesis of polyimide‐linked COFs (PI‐COFs) is further complicated by the poor reversibility of the ring‐closing reaction under solvothermal conditions. Herein, we report the ionothermal synthesis of crystalline and porous PI‐COFs in zinc chloride and eutectic salt mixtures. This synthesis does not require soluble precursors and the reaction time is significantly reduced as compared to standard solvothermal synthesis methods. In addition to applying the synthesis to previously reported imide COFs, a new perylene‐based COF was also synthesized, which could not be obtained by the classical solvothermal route. In situ high‐temperature XRPD analysis hints to the formation of precursor–salt adducts as crystalline intermediates, which then react with each other to form the COF. 相似文献