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Polyarylate membrane with special circular microporous structure by interfacial polymerization for gas separation

机译:聚芳酯膜具有特殊圆形微孔结构,通过界面聚合进行气体分离

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摘要

Microporous polymer membranes have received extensive attention in the membrane separation field based on the advantage of high gas permeance and low cost. However, there are a few reports of microporous polyacrylate membranes fabricated by interfacial polymerization (IP), and the formation mechanism and influence factor of the microporous structure is rarely illuminated. In this work, thin-film polyacrylate membrane with circular microporous morphology were prepared by IP method with cyclodextrin and acyl chloride as the aqueous and oil phase monomer respectively for effective gas separation. The effects of the aqueous and organic phase monomer structure and concentration, the concentration and type of alkali in the aqueous solution on the membrane morphology and gas separation performance were investigated in detail. As a result, the polyacrylate membrane fabricated by beta-cyclodextrin (beta-CD) and trimesoyl chloride (TMC) with optimal content of NaOH in the aqueous phase formed the special circular microporous structure by the scanning electronic microscope (SEM) characterization. The resulting membrane showed CO2 permeance of 200 GPU with CO2/N-2 ideal separation selectivity of 10.53. This work provides an effective strategy to fabricate high performance polyacrylate membrane by regulating the monomer structure and the alkali concentration in the aqueous phenol solution with IP method, which would inspire the exploration of other phenolic monomer for the assembly of microporous polymer membranes for gas separation or seawater desalination.
机译:基于高气体渗透性和低成本的优点,微孔聚合物膜在膜分离场中受到广泛的关注。然而,有一些关于通过界晶聚合(IP)制造的微孔聚丙烯酸酯膜的报道,并且很少照明微孔结构的形成机制和影响因子。在该工作中,通过分别具有环糊精和酰氯作为水性和油相单体的IP方法制备具有圆形微孔形态的薄膜聚丙烯酸酯膜,分别用于有效气体分离。详细研究了含水和有机相单体结构和浓度,碱金属溶液中碱的浓度,浓度和类型的影响。结果,通过扫描电子显微镜(SEM)表征在水相中具有最佳NaOH的NaOH的NaOH的最佳含量的聚丙烯酸酯膜(TMC),形成了特殊的圆形微孔结构。所得膜显示200GPu的CO 2渗透,CO 2 / N-2理想分离选择性为10.53。该工作提供了通过用IP方法调节含水酚溶液中的单体结构和碱浓度来制造高性能聚丙烯酸酯膜的有效策略,这将激发其他酚类单体用于组装微孔聚合物膜的探索,用于气体分离或海水淡化。

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