Vasileiou Athanasios N, Theodorakopoulos George V, Karousos Dionysios S, Bouroushian Mirtat, Sapalidis Andreas A, Favvas Evangelos P
Institute of Nanoscience and Nanotechnology, National Center for Scientific Research "Demokritos", Aghia Paraskevi, 15341 Attica, Greece.
School of Chemical Engineering, National Technical University of Athens, 9 Iroon Polytechniou Street, Zografou, 15780 Athens, Greece.
Membranes (Basel). 2023 Apr 28;13(5):470. doi: 10.3390/membranes13050470.
In the present work, Pebax-1657, a commercial multiblock copolymer (poly(ether-block-amide)), consisting of 40% rigid amide (PA6) groups and 60% flexible ether (PEO) linkages, was selected as the base polymer for preparing dense flat sheet mixed matrix membranes (MMMs) using the solution casting method. Carbon nanofillers, specifically, raw and treated (plasma and oxidized) multi-walled carbon nanotubes (MWCNTs) and graphene nanoplatelets (GNPs) were incorporated into the polymeric matrix in order to improve the gas-separation performance and polymer's structural properties. The developed membranes were characterized by means of SEM and FTIR, and their mechanical properties were also evaluated. Well-established models were employed in order to compare the experimental data with theoretical calculations concerning the tensile properties of MMMs. Most remarkably, the tensile strength of the mixed matrix membrane with oxidized GNPs was enhanced by 55.3% compared to the pure polymeric membrane, and its tensile modulus increased 3.2 times compared to the neat one. In addition, the effect of nanofiller type, structure and amount to real binary CO/CH (10/90 vol.%) mixture separation performance was evaluated under elevated pressure conditions. A maximum CO/CH separation factor of 21.9 was reached with CO permeability of 384 Barrer. Overall, MMMs exhibited enhanced gas permeabilities (up to fivefold values) without sacrificing gas selectivity compared to the corresponding pure polymeric membrane.
在本工作中,选用了商业多嵌段共聚物Pebax-1657(聚(醚-嵌段-酰胺)),其由40%的刚性酰胺(PA6)基团和60%的柔性醚(PEO)链段组成,采用溶液浇铸法制备致密平板混合基质膜(MMM)作为基础聚合物。为了提高气体分离性能和聚合物的结构性能,将碳纳米填料,具体来说,原始的和经过处理(等离子体处理和氧化处理)的多壁碳纳米管(MWCNT)以及石墨烯纳米片(GNP)掺入聚合物基质中。通过扫描电子显微镜(SEM)和傅里叶变换红外光谱(FTIR)对所制备的膜进行表征,并对其力学性能进行评估。采用成熟的模型将实验数据与关于MMM拉伸性能的理论计算进行比较。最显著的是,与纯聚合物膜相比,含有氧化GNP的混合基质膜的拉伸强度提高了55.3%,其拉伸模量是纯膜的3.2倍。此外,在高压条件下评估了纳米填料类型、结构和用量对实际二元CO/CH4(10/90体积%)混合物分离性能的影响。CO渗透率为384巴雷时,CO/CH4分离因子达到最大值21.9。总体而言,与相应的纯聚合物膜相比,MMM在不牺牲气体选择性的情况下表现出增强的气体渗透性(高达五倍)。