Effects of Pore Additives on Deep Eutectic Solvent Immobilization for CO₂/N₂ Gas Separation Using Supported Deep Eutectic Solvent Membranes

A. Nasib, N. Jullok, Mohd Irfan Hatim Mohamad Dzahir
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Abstract

This work analyses the effect of two different pore additives focusing on polyethylene glycol (PEG) and lithium chloride (LiCl) at different concentrations on the immobilization of a deep eutectic solvent (DES) in a polyvinylidene fluoride-co-polytetrafluoroethylene (PVDF-co-PTFE) membrane. Two compounds were chosen to synthesized the DES; choline chloride as halide salt and ethylene glycol as a hydrogen bond donor.  The DES was impregnated onto the membrane pores by applying a vacuum-based technique. The membranes were prepared via phase inversion by means of immersion precipitation. For characterization purposes, scanning electron microscopy (SEM-EDX) was used to analyse the morphology of the supported- DES-membranes together with energy dispersive X-ray spectrometry. The gravimetric method was applied to calculate the porosity, while the membrane performance for carbon dioxide (CO2) permeation and separation was assessed to determine the capability of the DES-impregnated membrane. The outcomes demonstrating that the highest loading of DES in the membrane support was obtained when 3 wt% PEG was added into the polymer solution with a porosity of 70.5%. The CO2 permeability and the CO2/N2 selectivity achieved using the synthesized membrane are 2.81 x 106 barrer and 3.46, respectively, when working with a transmembrane pressure of 1.1 bar and a temperature of 25ᵒC at 200 cm3 /min of gas flow rate. The results showed that additional of PEG as a pore additives able to load the highest DES in the membrane pore and resulted the best CO2 permeability and the CO2/N2 selectivity.
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孔添加剂对负载型深共晶溶剂膜固载CO₂/N₂气体分离的影响
本文分析了两种不同孔隙添加剂(聚乙二醇(PEG)和不同浓度的氯化锂(LiCl))对深度共晶溶剂(DES)在聚偏氟乙烯-共聚四氟乙烯(PVDF-co-PTFE)膜中固定化的影响。选择了两种化合物合成DES;氯化胆碱作为卤化物盐,乙二醇作为氢键供体。采用真空浸渍技术将DES浸渍在膜孔上。采用浸没沉淀法进行相转化制备膜。为了进行表征,使用扫描电子显微镜(SEM-EDX)和能量色散x射线光谱分析了负载- des膜的形态。采用重量法计算孔隙率,并对膜对二氧化碳的渗透和分离性能进行评估,以确定des浸渍膜的性能。结果表明,当孔隙率为70.5%的聚合物溶液中加入3wt %的PEG时,膜支架中DES的负载最高。当跨膜压力为1.1 bar,温度为25℃,气体流速为200 cm3 /min时,合成膜的CO2渗透率和CO2/N2选择性分别为2.81 × 106 barper和3.46 barper。结果表明,添加PEG作为孔隙添加剂可使膜孔中负载最高的DES,具有最佳的CO2渗透性和CO2/N2选择性。
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