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首页> 外文期刊>Polymer Testing >CO2/CH4 mixed gas separation using poly(ether-b-amide)-ZnO nanocomposite membranes: Experimental and molecular dynamics study
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CO2/CH4 mixed gas separation using poly(ether-b-amide)-ZnO nanocomposite membranes: Experimental and molecular dynamics study

机译:Co2 / CH4混合气体分离使用聚(醚-B-酰胺)-ZnO纳米复合膜:实验和分子动力学研究

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摘要

Poly (ether-b-amide) (PEBA) mixed matrix membranes (MMMs) filled by different amounts of nano ZnO (up to 1 wt %) were synthesized and their gas separation performance was evaluated for CO2, CH4 and N-2 pure gas and their binary mixtures. The ZnO-filled PEBA MMMs were characterized using ATR-FTIR, FESEM, AFM, TGA, DMTA, XRD and Mechanical tensile strength analyses. Generally, it was revealed that 0.5 wt % loading of ZnO into the polymer matrix caused a ZnO-PEO interaction; while ZnO-ZnO self-association hindered the interaction for the MMMs with other loadings of ZnO. As a result, PEBA-ZnO 0.5 wt % MMM possessed a higher glass transition temperature (T-g). Therefore, the CO2 permeability through PEBA-ZnO 0.5 wt % enhanced 27% than simple PEBA membrane. Moreover, all the fabricated MMMs were simulated by molecular simulation. Grand Canonical Monte Carlo (GCMC) and Molecular Dynamics (MD) methods were also applied to simulate the structural and gas transport properties of the membranes. The RDF, XRD, T-g, FFV and density analysis were compared with experimental results. Also, a binary mixture of CO2:CH4 (10:90) was used to determine CO2 permeability and CO2/CH4 selectivity, which were considerably reduced compared to single gas experiments. Moreover, the solubility of the binary gas mixture, the energy distribution and density distribution of both gases within the simulated cell were calculated by molecular simulation.
机译:用不同量的纳米ZnO(最多1wt%)填充的聚(醚-B氨酰胺)(PEBA)混合基质膜(MMMS)被合成,并评价其对CO 2,CH 4和N-2纯气体的气体分离性能和他们的二元混合物。使用ATR-FTIR,FESEM,AFM,TGA,DMTA,XRD和机械拉伸强度分析来表征ZnO填充的PEBA MMM。通常,揭示了0.5wt%ZnO入聚合物基质引起ZnO-PEO相互作用;虽然ZnO-ZnO自我关联阻碍了与ZnO的其他负载的MMMS的相互作用。结果,PEBA-ZnO 0.5wt%毫米具有更高的玻璃化转变温度(T-G)。因此,通过PEBA-ZnO 0.5wt%的CO 2渗透性增强了27%而不是简单的PEBA膜。此外,通过分子模拟模拟所有制造的MMM。还应用了大规范蒙特卡罗(GCMC)和分子动力学(MD)方法来模拟膜的结构和气体传输性能。将RDF,XRD,T-G,FFV和密度分析与实验结果进行了比较。此外,与单气实验相比,CO 2:CH 4(10:90)的二元混合物用于确定CO 2渗透性和CO 2 / CH 4选择性,这相比显着减少。另外,通过分子模拟计算二元气体混合物,两种气体内的气体的能量分布和密度分布的溶解度。

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