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首页> 外文期刊>High performance polymers >Effect of End Group Modification on Gas Transport Properties of 6FDA-TAPOB Hyperbranched Polyimide-Silica Hybrid Membranes
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Effect of End Group Modification on Gas Transport Properties of 6FDA-TAPOB Hyperbranched Polyimide-Silica Hybrid Membranes

机译:端基修饰对6FDA-TAPOB超支化聚酰亚胺-二氧化硅杂化膜气体输运性能的影响

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摘要

Physical and gas transport properties of end group-modified 6FDA-TAPOB hyperbranched polyimide (HBPI)-silica hybrid membranes were investigated. Hyperbranched polyamic acids as precursors were synthesized by polycondensation of diamine, 1,3,5-tris(4-aminophenoxy)benzene (TAPOB), and dianhydride, 4,4'-(hexafluoroisopropylidene)diphthalic anhydride (6FDA), and the molecular end groups were subsequently allowed to react with 3-aminopropyltrimethoxysilane (APTrMOS) and fluorine compound, 3,5-bis(trifluoromethyl)aniline (6FMA) and 1H, 1H-heptadecafluorononylamine (17FN). The HBPI-silica hybrids were prepared by sol-gel reaction using the polyamic acids, water, and tetram-ethoxysilane (TMOS). The 5% weight-loss and glass transition temperatures of the hybrids considerably increased with increasing silica content, indicating effective crosslinking at polymer-silica interface mediated by APTrMOS moiety. The CO2, O2, N2, and CH4 permeability coefficients of the hybrids increased with increasing silica content. In particular, 6FMA-modified and 17FN-modified 6FDA-TAPOB HBPI-silica hybrids showed high gas permeability, arising from their high fractional free volumes. The CO2/CH4 selectivity of the hybrids increased remarkably with increasing silica content, whereas their O2/N2 selectivity remained almost constant against silica content. It was concluded that the HBPI-silica hybrids have high thermal stability, high gas permeability, and excellent CO2/CH4 selectivity, and are expected to apply to high-performance gas separation membranes.
机译:研究了端基修饰的6FDA-TAPOB超支化聚酰亚胺(HBPI)-二氧化硅杂化膜的物理和气体传输性质。通过将二胺,1,3,5-三(4-氨基苯氧基)苯(TAPOB)和二酐,4,4'-(六氟异亚丙基)二邻苯二甲酸酐(6FDA)进行缩聚反应,合成了超支化聚酰胺酸作为前体。随后使这些基团与3-氨基丙基三甲氧基硅烷(APTrMOS)和氟化合物,3,5-双(三氟甲基)苯胺(6FMA)和1H,1H-十七氟壬基胺(17FN)反应。使用聚酰胺酸,水和四乙氧基硅烷(TMOS)通过溶胶-凝胶反应制备HBPI-二氧化硅杂化物。杂化物的5%失重和玻璃化转变温度随着二氧化硅含量的增加而显着增加,表明由APTrMOS部分介导的聚合物-二氧化硅界面有效交联。杂化物的CO2,O2,N2和CH4渗透系数随二氧化硅含量的增加而增加。特别是,6FMA修饰和17FN修饰的6FDA-TAPOB HBPI-二氧化硅杂化物表现出高的气体渗透性,这是由于它们的高自由体积分数引起的。杂化物的CO2 / CH4选择性随二氧化硅含量的增加而显着增加,而它们的O2 / N2选择性相对于二氧化硅含量几乎保持恒定。结论是,HBPI-二氧化硅杂化物具有高的热稳定性,高的气体渗透性和出色的CO2 / CH4选择性,并有望应用于高性能气体分离膜。

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