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基于金属有机框架的工程材料——基础与应用。

Metal-Organic Framework-Based Engineered Materials-Fundamentals and Applications.

机构信息

School of Chemistry & Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

Department of Chemistry, University of Sahiwal, Sahiwal 57000, Pakistan.

出版信息

Molecules. 2020 Mar 31;25(7):1598. doi: 10.3390/molecules25071598.

Abstract

Metal-organic frameworks (MOFs) are a fascinating class of porous crystalline materials constructed by organic ligands and inorganic connectors. Owing to their noteworthy catalytic chemistry, and matching or compatible coordination with numerous materials, MOFs offer potential applications in diverse fields such as catalysis, proton conduction, gas storage, drug delivery, sensing, separation and other related biotechnological and biomedical applications. Moreover, their designable structural topologies, high surface area, ultrahigh porosity, and tunable functionalities all make them excellent materials of interests for nanoscale applications. Herein, an effort has been to summarize the current advancement of MOF-based materials (i.e., pristine MOFs, MOF derivatives, or MOF composites) for electrocatalysis, photocatalysis, and biocatalysis. In the first part, we discussed the electrocatalytic behavior of various MOFs, such as oxidation and reduction candidates for different types of chemical reactions. The second section emphasizes on the photocatalytic performance of various MOFs as potential candidates for light-driven reactions, including photocatalytic degradation of various contaminants, CO reduction, and water splitting. Applications of MOFs-based porous materials in the biomedical sector, such as drug delivery, sensing and biosensing, antibacterial agents, and biomimetic systems for various biological species is discussed in the third part. Finally, the concluding points, challenges, and future prospects regarding MOFs or MOF-based materials for catalytic applications are also highlighted.

摘要

金属-有机骨架(MOFs)是一类由有机配体和无机连接物构建的多孔晶体材料,具有引人注目的催化化学性质,并且与许多材料具有匹配或兼容的配位性,因此在催化、质子传导、气体存储、药物输送、传感、分离等相关生物技术和生物医学应用领域具有潜在的应用。此外,其可设计的结构拓扑、高表面积、超高孔隙率和可调谐功能使其成为纳米级应用的优秀材料。本文综述了基于 MOF 的材料(即原始 MOF、MOF 衍生物或 MOF 复合材料)在电催化、光催化和生物催化方面的最新进展。在第一部分中,我们讨论了各种 MOF 的电催化行为,例如不同类型化学反应的氧化和还原候选物。第二部分强调了各种 MOF 的光催化性能,它们是光驱动反应的潜在候选物,包括各种污染物的光催化降解、CO 还原和水分解。在第三部分中,讨论了基于 MOF 的多孔材料在生物医学领域的应用,如药物输送、传感和生物传感、抗菌剂以及各种生物物种的仿生系统。最后,还强调了 MOF 或基于 MOF 的材料在催化应用方面的结论、挑战和未来前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e94/7180910/79d6d96998fc/molecules-25-01598-g001.jpg

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