State Key Laboratory of Urban Water Resource and Environment, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, China.
Key Laboratory of Materials Processing and Mold (Ministry of Education), National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou, China.
Nat Commun. 2023 Mar 27;14(1):1697. doi: 10.1038/s41467-023-37479-9.
Advances in membrane technologies are significant for mitigating global climate change because of their low cost and easy operation. Although mixed-matrix membranes (MMMs) obtained via the combination of metal-organic frameworks (MOFs) and a polymer matrix are promising for energy-efficient gas separation, the achievement of a desirable match between polymers and MOFs for the development of advanced MMMs is challenging, especially when emerging highly permeable materials such as polymers of intrinsic microporosity (PIMs) are deployed. Here, we report a molecular soldering strategy featuring multifunctional polyphenols in tailored polymer chains, well-designed hollow MOF structures, and defect-free interfaces. The exceptional adhesion nature of polyphenols results in dense packing and visible stiffness of PIM-1 chains with strengthened selectivity. The architecture of the hollow MOFs leads to free mass transfer and substantially improves permeability. These structural advantages act synergistically to break the permeability-selectivity trade-off limit in MMMs and surpass the conventional upper bound. This polyphenol molecular soldering method has been validated for various polymers, providing a universal pathway to prepare advanced MMMs with desirable performance for diverse applications beyond carbon capture.
膜技术的进步对于缓解全球气候变化具有重要意义,因为它们具有低成本和易于操作的特点。虽然通过金属-有机骨架(MOFs)和聚合物基质的组合获得的混合基质膜(MMMs)对于节能气体分离很有前景,但为了开发先进的 MMMs,在聚合物和 MOFs 之间实现理想的匹配具有挑战性,特别是在新兴的高渗透性材料如聚合物固有微孔(PIMs)被应用时。在这里,我们报告了一种分子焊接策略,该策略具有定制聚合物链中的多功能多酚、精心设计的中空 MOF 结构和无缺陷的界面。多酚的优异粘附性质导致 PIM-1 链的密集堆积和可见的刚性,从而增强了选择性。中空 MOFs 的结构导致自由传质,并大大提高了渗透性。这些结构优势协同作用,打破了 MMMs 中渗透性-选择性权衡的限制,并超过了传统的上限。这种多酚分子焊接方法已经在各种聚合物上得到了验证,为制备具有各种应用所需理想性能的先进 MMMs 提供了一种通用途径,而不仅仅是在碳捕获方面。