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通过金属有机框架-聚合物复合材料协同构建亚纳米通道膜:策略与纳滤应用

Synergistic Construction of Sub-Nanometer Channel Membranes through MOF-Polymer Composites: Strategies and Nanofiltration Applications.

作者信息

Chen Qian, Tang Ying, Ding Yang-Min, Jiang Hong-Ya, Zhang Zi-Bo, Li Wei-Xing, Liu Mei-Ling, Sun Shi-Peng

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering, National Engineering Research Center for Special Separation Membranes, Jiangsu National Synergetic Innovation Center for Advanced Materials, College of Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.

Nanjing Membrane Materials Industrial Technology Research Institute Co., Ltd., Nanjing 211816, China.

出版信息

Polymers (Basel). 2024 Jun 11;16(12):1653. doi: 10.3390/polym16121653.

Abstract

The selective separation of small molecules at the sub-nanometer scale has broad application prospects in the field, such as energy, catalysis, and separation. Conventional polymeric membrane materials (e.g., nanofiltration membranes) for sub-nanometer scale separations face challenges, such as inhomogeneous channel sizes and unstable pore structures. Combining polymers with metal-organic frameworks (MOFs), which possess uniform and intrinsic pore structures, may overcome this limitation. This combination has resulted in three distinct types of membranes: MOF polycrystalline membranes, mixed-matrix membranes (MMMs), and thin-film nanocomposite (TFN) membranes. However, their effectiveness is hindered by the limited regulation of the surface properties and growth of MOFs and their poor interfacial compatibility. The main issues in preparing MOF polycrystalline membranes are the uncontrollable growth of MOFs and the poor adhesion between MOFs and the substrate. Here, polymers could serve as a simple and precise tool for regulating the growth and surface functionalities of MOFs while enhancing their adhesion to the substrate. For MOF mixed-matrix membranes, the primary challenge is the poor interfacial compatibility between polymers and MOFs. Strategies for the mutual modification of MOFs and polymers to enhance their interfacial compatibility are introduced. For TFN membranes, the challenges include the difficulty in controlling the growth of the polymer selective layer and the performance limitations caused by the "trade-off" effect. MOFs can modulate the formation process of the polymer selective layer and establish transport channels within the polymer matrix to overcome the "trade-off" effect limitations. This review focuses on the mechanisms of synergistic construction of polymer-MOF membranes and their structure-nanofiltration performance relationships, which have not been sufficiently addressed in the past.

摘要

亚纳米尺度下小分子的选择性分离在能源、催化和分离等领域具有广阔的应用前景。用于亚纳米尺度分离的传统聚合物膜材料(如纳滤膜)面临着诸如通道尺寸不均匀和孔结构不稳定等挑战。将聚合物与具有均匀且固有孔结构的金属有机框架(MOF)相结合,可能会克服这一局限性。这种结合产生了三种不同类型的膜:MOF多晶膜、混合基质膜(MMM)和薄膜纳米复合(TFN)膜。然而,它们的有效性受到MOF表面性质和生长的有限调控以及其较差的界面相容性的阻碍。制备MOF多晶膜的主要问题是MOF的不可控生长以及MOF与基底之间的附着力差。在此,聚合物可作为一种简单而精确的工具,用于调控MOF的生长和表面功能,同时增强其与基底的附着力。对于MOF混合基质膜,主要挑战是聚合物与MOF之间较差的界面相容性。介绍了对MOF和聚合物进行相互改性以增强其界面相容性的策略。对于TFN膜,挑战包括控制聚合物选择层生长的困难以及由“权衡”效应导致的性能限制。MOF可以调节聚合物选择层的形成过程,并在聚合物基质内建立传输通道,以克服“权衡”效应的限制。本综述重点关注聚合物 - MOF膜协同构建的机制及其结构 - 纳滤性能关系,这些在过去尚未得到充分探讨。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab10/11207757/84eb3efb898a/polymers-16-01653-g005.jpg

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