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Beta-cyclodextrin functionalized MWCNT: A potential nano-membrane material for mixed matrix gas separation membranes development

机译:β-环糊精官能化的MWCNT:潜在的用于混合基质气体分离膜开发的纳米膜材料

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摘要

In this paper, synthesized (raw) multi-walled carbon nanotubes (rMWCNTs) were functionalized with beta-cyclodextrin (bC) using Chen's soft cutting technique. Raw multi-walled carbon nanotubes (rMWCNTs) and beta-cyclodextrin functionalized multi-walled carbon nanotubes (bCfMWCNTs) were characterized by transmission electron microscope (TEM). Neat polyimide (PI) and polyimide/ bCfMWCNTs mixed matrix membranes were fabricated by immersion precipitation method. Pure methane and carbon dioxide were used as test gases to measure the permeances of membrane samples. Thermal properties of membranes and MWCNTs were characterized by differential scanning calorimetery (DSC) and thermogravimetric analysis (TGA), respectively. The TEM results showed that beta-cyclodextrin cannot only attach to the inner and outer surface of the MWCNT walls but also fill the open-ended tips of the MWCNTs. TGA thermograms showed that bCfMWCNTs are thermally less stable than rMWCNTs due to the decomposition of beta-cyclodextrin layer, which occurred before the decomposition of rMWCNTs. According to the DSC experiment, the glass transition temperature (T_g) increased as bCfMWCNTs increases in the polymer matrix. The increase in glass transition was attributed to good dispersion of the bCfMWCNTs in the polymer matrix as a result of improved attachment of bCfMWCNTs to the polymer segments. Separation properties and morphology (and distribution of bCfMWCNTs within the polymer matrix) of the fabricated membranes were analyzed by using permeation test and cross sectional FESEM micrographs respectively. Permeation test results revealed that the ideal C02/CH4 selectivity increased considerably from neat polyimide membrane to polyimide/bCfMWCNTs mixed matrix membranes. Cross sectional FESEM results showed that well dispersed bCfMWCNTs within the polymer matrix are observable especially in case of PI/6 wt.% BFBM MMM.
机译:在本文中,使用Chen的软切割技术将合成的(原始)多壁碳纳米管(rMWCNT)用β-环糊精(bC)进行了功能化。用透射电子显微镜(TEM)对未加工的多壁碳纳米管(rMWCNTs)和β-环糊精官能化的多壁碳纳米管(bCfMWCNTs)进行了表征。采用浸没沉淀法制备了纯聚酰亚胺(PI)和聚酰亚胺/ bCfMWCNTs混合基质膜。纯甲烷和二氧化碳用作测试气体,以测量膜样品的渗透率。分别通过差示扫描量热法(DSC)和热重分析(TGA)表征膜和MWCNT的热性能。 TEM结果表明,β-环糊精不仅可以附着在MWCNT壁的内外表面,而且可以填充MWCNT的开放末端。 TGA热分析图显示,由于在rMWCNT分解之前发生的β-环糊精层的分解,bCfMWCNT的热稳定性不如rMWCNT。根据DSC实验,玻璃化转变温度(T_g)随着聚合物基质中bCfMWCNTs的增加而增加。玻璃化转变的增加归因于bCfMWCNTs在聚合物基体中的附着改善,结果bcfMWCNTs在聚合物基质中分散良好。分别通过渗透测试和横截面FESEM显微照片分析了所制备膜的分离特性和形态(以及bCfMWCNT在聚合物基体内的分布)。渗透测试结果表明,从纯聚酰亚胺膜到聚酰亚胺/ bCfMWCNTs混合基质膜,理想的CO2 / CH4选择性大大提高。横截面FESEM结果表明,在聚合物基质中良好分散的bCfMWCNT是可观察到的,特别是在PI / 6重量%BFBM MMM的情况下。

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