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High performance carbon molecular sieve membranes derived from hyperbranched polyimide precursors for improved gas separation applications

机译:源自超支化聚酰亚胺前体的高性能碳分子筛膜,可改善气体分离应用

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摘要

A series of hyperbranched polyimides (HBPI) were selected as precursors for the production of carbon molecular sieve membranes (CMSMs) and the gas separation performance of the resultant CMSMs was explored. By varying the monomer compositions of HBPI precursor polymers, the influences of degree of branching on pore size and distribution of the CMSMs are investigated and examined. A CO2 permeability of 1085 Barrer with CO2/CH4 selectivity of 52 is attained. Thermal analyses reveal that the chain rigidity of the precursors increases with the degree of branching, while the density of the CMSMs shows an opposite trend. In view of the unique network structure offered by the HBPI precursors, it is speculated that the rigid network of the HBPI with the highest degree of branching has facilitated the formation of ultra-micropores, giving rise to the more constrained structure and improved dif-fusivity selectivity. The unique hyperbranched network structure found in HBPI possesses great potential to producing CMSMs with superior performance.
机译:选择了一系列的超支化聚酰亚胺(HBPI)作为生产碳分子筛膜(CMSM)的前体,并探讨了所得CMSM的气体分离性能。通过改变HBPI前体聚合物的单体组成,研究和研究了支化度对CMSM孔径和分布的影响。获得的CO2渗透率为1085 Barrer,CO2 / CH4选择性为52。热分析表明,前体的链刚性随支化程度的增加而增加,而CMSM的密度却呈现相反的趋势。考虑到HBPI前体提供的独特网络结构,推测具有最高支化度的HBPI刚性网络促进了超微孔的形成,从而产生了更受约束的结构并改善了扩散性选择性。 HBPI中发现的独特的超支化网络结构具有生产具有优异性能的CMSM的巨大潜力。

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