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金属有机框架材料作为多孔有机聚合物基杂化材料中的填料:组成、加工及应用方面的创新

Metal-Organic Frameworks as Fillers in Porous Organic Polymer-Based Hybrid Materials: Innovations in Composition, Processing, and Applications.

作者信息

Durán-Egido Victor, García-Giménez Daniel, Martínez-López Juan Carlos, Pérez-Vidal Laura, Carretero-González Javier

机构信息

Faculty of Chemistry, Universidad Complutense de Madrid, 28040 Madrid, Spain.

Institute of Polymer Science and Technology, ICTP, CSIC, 28006 Madrid, Spain.

出版信息

Polymers (Basel). 2025 Jul 15;17(14):1941. doi: 10.3390/polym17141941.

Abstract

Hybrid materials based on porous organic polymers (POPs) and metal-organic frameworks (MOFs) are increasing attention for advanced separation processes due to the possibility to combine their properties. POPs provide high surface areas, chemical stability, and tunable porosity, while MOFs contribute a high variety of defined crystalline structures and enhanced separation characteristics. The combination (or hybridization) with PIMs gives rise to mixed-matrix membranes (MMMs) with improved permeability, selectivity, and long-term stability. However, interfacial compatibility remains a key limitation, often addressed through polymer functionalization or controlled dispersion of the MOF phase. MOF/COF hybrids are more used as biochemical sensors with elevated sensitivity, catalytic applications, and wastewater remediation. They are also very well known in the gas sorption and separation field, due to their tunable porosity and high electrical conductivity, which also makes them feasible for energy storage applications. Last but not less important, hybrids with other POPs, such as hyper-crosslinked polymers (HCPs), covalent triazine frameworks (CTFs), or conjugated microporous polymers (CMPs), offer enhanced functionality. MOF/HCP hybrids combine ease of synthesis and chemical robustness with tunable porosity. MOF/CTF hybrids provide superior thermal and chemical stability under harsh conditions, while MOF/CMP hybrids introduce π-conjugation for enhanced conductivity and photocatalytic activity. These and other findings confirm the potential of MOF-POP hybrids as next-generation materials for gas separation and carbon capture applications.

摘要

基于多孔有机聚合物(POPs)和金属有机框架(MOFs)的杂化材料因有可能结合它们的特性而在先进分离过程中越来越受到关注。POPs具有高比表面积、化学稳定性和可调孔隙率,而MOFs则具有多种确定的晶体结构和增强的分离特性。与PIMs结合(或杂化)可产生具有改善的渗透性、选择性和长期稳定性的混合基质膜(MMMs)。然而,界面相容性仍然是一个关键限制,通常通过聚合物功能化或MOF相的可控分散来解决。MOF/COF杂化物更多地用作具有高灵敏度的生化传感器、催化应用和废水修复。由于其可调孔隙率和高电导率,它们在气体吸附和分离领域也非常知名,这也使其在储能应用中可行。最后但同样重要的是,与其他POPs的杂化物,如超交联聚合物(HCPs)、共价三嗪框架(CTFs)或共轭微孔聚合物(CMPs),具有增强的功能。MOF/HCP杂化物将易于合成和化学稳定性与可调孔隙率结合在一起。MOF/CTF杂化物在苛刻条件下提供卓越的热稳定性和化学稳定性,而MOF/CMP杂化物引入π共轭以增强导电性和光催化活性。这些以及其他发现证实了MOF-POP杂化物作为气体分离和碳捕获应用的下一代材料的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/125b/12298947/703dd20cb378/polymers-17-01941-g001.jpg

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