Molecular Simulation of CO2/CH4 Transport and Separation in Polystyrene-block-poly(ethylene oxide)/Ionic Liquid (IL) Membranes: Insights into Nanoconfined IL Effects

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Azam Salmankhani, Alexander M. Lopez, Paul Scovazzo, Adam E. Smith, Sasan Nouranian
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引用次数: 0

Abstract

The phenomenon of ionic liquid (IL) nanoconfinement within a copolymer/IL membrane reportedly enhances membrane selectivity, solubility, and transport in gas separations. Also, the copolymer/IL membrane morphology has been found to affect IL stability at high transmembrane pressures. In this work, a combined mesoscopic dynamics simulation and hybrid grand canonical Monte Carlo/molecular dynamics (GCMC-MD) simulations were carried out to investigate the morphologies, as well as CO2/CH4 gas diffusivities, solubilities, and selectivities of polystyrene-b-poly(ethylene oxide) (PS-b-PEO)/1-Ethyl-3-methylimidazolium thiocyanate ([EMIM][SCN]) and PS-b-PEO/1-Ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ([EMIM][Tf2N]) membranes. The latter simulations focused on nanoconfined ILs in the copolymer/IL phase boundaries at 2.5 and 5 nm confinement lengths. The investigated systems were four nanoconfined ILs, i.e., PS/[EMIM][SCN]/PEO (the IL forming a separate microphase, denoted IL-Micro), PS/[EMIM][Tf2N]/PEO, PS/[EMIM][SCN]-PEO/PS (the IL distributed in the PEO phase, denoted IL-PEO), and PS/[EMIM][Tf2N]-PEO/PS, and five control systems, i.e., PS/PEO/PS, bulk PS, bulk PEO, bulk [EMIM][SCN], and bulk [EMIM][Tf2N]. Based on the mesoscopic dynamics simulation results, the dominant membrane morphologies at IL loadings of <50 vol % were lamellar or cylindrical (favorable for both IL stability at high transmembrane pressures if the bedding planes are horizontal, i.e. at 90° to the nominal direction of the transmembrane pressure gradient) with the IL-PEO or IL-Micro phases. Also, there was an overall 50% match between the observed PS-b-PEO/[EMIM][SCN] and PS-b-PEO/[EMIM][Tf2N] membrane morphologies. Based on the MD simulation results, both CO2 and CH4 diffusivities were the smallest in the bulk PS (control) and highest in the PS/[EMIM][Tf2N]/PEO system (IL-Micro between the PS and PEO phases) at both confinement lengths. The CO2 diffusivities were, on average, larger when the confinement length increased to 5 nm. The GCMC-MD results indicated that the CO2 solubility in the IL-Micro phases was higher than in the corresponding bulk ILs at both confinement lengths, with the PS/[EMIM][Tf2N]/PEO system exhibiting the highest CO2 solubility, followed by the PS/[EMIM][SCN]/PEO system. Additionally, the permselectivities of the nanoconfined IL systems were, on average, 40–50% larger than those of the bulk systems, with the highest permselectivity observed for PS/[EMIM][Tf2N]/PEO at the confinement length of 5 nm. Overall, the IL nanoconfinement between the PS and PEO phases (IL-Micro) leads to significant improvements in the CO2/CH4 permselectivities, suggesting that strategies to create nanoconfined IL morphologies in the copolymer/IL membranes are very promising for optimizing the membrane gas separation performance.

Abstract Image

聚苯乙烯-聚(环氧乙烷)/离子液体(IL)膜中CO2/CH4运输和分离的分子模拟:纳米限制IL效应的见解
据报道,共聚物/离子液体膜内离子液体(IL)纳米约束现象增强了膜的选择性、溶解度和气体分离中的传输。此外,共聚物/IL膜的形态也会影响IL在高跨膜压力下的稳定性。在这项工作中,结合介观动力学模拟和混合经典蒙特卡罗/分子动力学(GCMC-MD)模拟,研究了聚苯乙烯-b-聚环氧乙烷(PS-b-PEO)/1-乙基-3-甲基咪唑硫氰酸酯([EMIM][SCN])和PS-b-PEO/1-乙基-3-甲基咪唑双(三氟甲基磺酰基)亚胺([EMIM][Tf2N])膜的形态、CO2/CH4气体扩散率、溶解度和选择性。后者的模拟集中在2.5 nm和5 nm约束长度的共聚物/IL相界中的纳米限制IL。所研究的体系是4种纳米限制的ILs,即PS/[EMIM][SCN]/PEO(形成独立微相的IL- micro)、PS/[EMIM][Tf2N]/PEO、PS/[EMIM][SCN]-PEO/PS(分布在PEO相中的IL, IL-PEO)和PS/[EMIM][Tf2N]-PEO/PS,以及5种控制体系,即PS/PEO/PS、散装PS、散装PEO、散装[EMIM][SCN]和散装[EMIM][Tf2N]。基于介观动力学模拟结果,IL- peo或IL- micro相在IL- peo或IL- micro相的层状或圆柱形(如果层理平面是水平的,即与跨膜压力梯度的名义方向成90°,则有利于IL- peo或IL- micro相在高跨膜压力下的IL- peo或IL- micro相的稳定性)。此外,观察到的PS-b-PEO/[EMIM][SCN]和PS-b-PEO/[EMIM][Tf2N]膜形态之间总体上有50%的匹配。基于MD模拟结果,在两种约束长度下,CO2和CH4的扩散系数在主体PS(对照)中最小,在PS/[EMIM][Tf2N]/PEO体系(介于PS和PEO相之间的IL-Micro)中最高。当约束长度增加到5 nm时,CO2扩散系数平均增大。GCMC-MD结果表明,在两种约束长度下,CO2在IL-Micro相中的溶解度均高于相应的体il相,其中PS/[EMIM][Tf2N]/PEO体系的CO2溶解度最高,其次是PS/[EMIM][SCN]/PEO体系。此外,纳米约束IL体系的介电选择性平均比本体体系高40-50%,在约束长度为5 nm时,对PS/[EMIM][Tf2N]/PEO的介电选择性最高。总的来说,PS相和PEO相之间的IL纳米限制(IL- micro)导致CO2/CH4透选率的显著提高,这表明在共聚物/IL膜中创建纳米限制IL形态的策略对于优化膜气体分离性能非常有希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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