聚合物
材料科学
聚乙烯醇
化学工程
膜
聚乙二醇
PEG比率
聚乙烯亚胺
纳米颗粒
高分子化学
复合材料
纳米技术
化学
财务
转染
生物化学
基因
工程类
经济
作者
Xiaohui Liu,Boyu Li,Jiaxiang Liu,Xuanting He,Huachen Liu,Shun Mao,Wen‐Quan Tao,Zhuo Li
标识
DOI:10.1016/j.memsci.2023.122219
摘要
Membrane separation technology has been widely used in the separation and capture of CO2 to reduce carbon emissions. The performances of facilitated hybrid membranes (FHMs) can be improved by properly adding metal-organic framework (MOF)-based nanoparticles (NPs) and modifying polymers to the polymer matrix. Grafting and blending methods are widely used to introduce modifying polymers to improve the compatibility between NPs and the polymer matrix, and the performance of FHMs for CO2 separation. However, the separation performance of FHMs decreases significantly when the long chains of the polymer infiltrate into the pores of the MOF at the interface between the modifying polymer and MOF. To in-depth understand the nano-scale polymer-NPs interfacial interaction mechanism of the grafting and blending methods, we herein employed molecular dynamic (MD) simulation method combined with experiments to investigate the interface between NPs of Cu-MOF (Cu-BDC) and four commonly used modifying polymers (PEG, polyethylene glycol; PEI, polyethylenimine; PVA, polyvinyl alcohol; PPy, polypyrrole) with PVDF (polyvinylidene difluoride) as the polymer matrix. The results showed that the blending method for modification can effectively avoid the polymer blockage in Cu-BDC pores by using four modifying polymers, while the grafting method caused polymer infiltration for PEG and PEI. The relationship between the polymer diameter and the pore limiting diameter (PLD) of the Cu-BDC was evaluated to analyze the polymer infiltration effect. FHMs of Cu-BDC/PEG@PVDF were synthesized based on the MD simulation results, which showed excellent CO2 separation performance due to the good compatibility between the Cu-BDC and the modified matrix polymer. This work offers an insight in nano-scale into the interface design between the MOF and the polymer for FHMs separating CO2.
科研通智能强力驱动
Strongly Powered by AbleSci AI