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玩转离子液体混合物以设计工程 CO2 分离膜。

Playing with ionic liquid mixtures to design engineered CO2 separation membranes.

机构信息

Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Av. República, 2780-157 Oeiras, Portugal.

出版信息

Phys Chem Chem Phys. 2014 Aug 28;16(32):17172-82. doi: 10.1039/c4cp01434k.

Abstract

Ionic liquids have been explored as attractive alternative media for CO2 separation not only due to their low volatility but also due to their highly tuneable nature. Aiming at designing highly efficient liquid phases for flue gas separation and natural gas purification, this work focuses on the use of binary ionic liquid mixtures containing sulfate and/or cyano-functionalized anions. Several mixtures were prepared and their gas transport properties through supported ionic liquid membranes (SILMs) were investigated. The thermophysical properties of these mixtures, namely viscosity and density (data presented and discussed in ESI), were also measured so that trends between transport properties and thermophysical properties could be evaluated. The results obtained indicate that depending on the anions mixed, membranes with fine-tuned gas permeabilities, diffusivities and solubilities can be obtained. Additionally, SILMs prepared with these ionic liquid mixtures are on the upper bound of the CO2/N2 separation, or even may surpass it, indicating their potential for separating CO2 in low-pressure post-combustion processes. Overall, the use of ionic liquid mixtures combining the most selective anions with the least viscous anions is a highly promising strategy to design advanced engineered liquid phases for CO2 separation membranes.

摘要

离子液体由于其低挥发性和高度可调的性质,已被探索作为有吸引力的 CO2 分离替代介质。本工作旨在设计用于烟道气分离和天然气净化的高效液相,重点是使用含有硫酸盐和/或氰基官能化阴离子的二元离子液体混合物。制备了几种混合物,并研究了它们在支撑离子液体膜(SILM)中的气体传输性质。还测量了这些混合物的热物理性质,即粘度和密度(在 ESI 中给出和讨论的数据),以便评估传输性质和热物理性质之间的趋势。所得结果表明,根据混合的阴离子,可以获得具有微调气体渗透性、扩散性和溶解度的膜。此外,用这些离子液体混合物制备的 SILM 处于 CO2/N2 分离的上限,甚至可能超过它,表明它们在低压后燃烧过程中分离 CO2 的潜力。总的来说,使用结合了最选择性阴离子和最不粘性阴离子的离子液体混合物是设计用于 CO2 分离膜的先进工程液相的极具前景的策略。

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