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首页> 外文期刊>Journal of Membrane Science >Relationship between chemical structure of aromatic polyimides and gas permeation properties of their carbon molecular sieve membranes
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Relationship between chemical structure of aromatic polyimides and gas permeation properties of their carbon molecular sieve membranes

机译:芳香族聚酰亚胺的化学结构与其碳分子筛膜的透气性能的关系

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A series of aromatic polyimides was prepared via two-step polymerization and subsequent thermal imidization to manufacture carbon molecular sieve (CMS) membranes. In order to know the effect of microstructural changes of the polyimides on the gas permeation properties of their CMS membranes, three copolyimides were designed and synthesized using a dianhydride and diamines with a different number of methyl substituent groups. The density, fractional free volume (FFV), and glassy transition temperature (T_g) of the polyimides were characterized to investigate the microstructural changes of the polyimides which led to the difference in gas permeation properties as well as that in their physical properties. The introduction of methyl substituent group in the rigid polyimide backbone increased FFV of polyimides, and the gas permeabilities increased typically with FFV. After an inert pyrolysis of these polyimides, similar gas permeation behaviors were also observed in their CMS membranes pyrolyzed at 600 and 800℃, respectively. That is, the gas permeation characteristics of the polyimide due to the structural change were well kept even after pyrolysis within the temperature range used in this work. In all cases, the gas permeabilities increased in the order He > CO_2 > O_2 > N_2, indicating that the gas permeabilities are in agreement with the order of the kinetic gas diameters. The CMS membranes prepared in this study exhibited good separation properties on He/N_2, O_2/N_2, and CO_2/N_2 with satisfactory gas permeabilities. Thereby, the present work will provide an insight into the molecular design of the polymeric precursors for the effective preparation of the CMS membranes.
机译:通过两步聚合反应和随后的热酰亚胺化反应制备了一系列芳香族聚酰亚胺,以制造碳分子筛(CMS)膜。为了了解聚酰亚胺的微观结构变化对其CMS膜的气体渗透性能的影响,使用二酐和具有不同数量甲基取代基的二胺设计并合成了三种共聚酰亚胺。通过对聚酰亚胺的密度,自由体积分数(FFV)和玻璃化转变温度(T_g)进行表征,研究了聚酰亚胺的微观结构变化,这些变化导致了气体渗透性能及其物理性能的差异。在刚性聚酰亚胺主链中引入甲基取代基会增加聚酰亚胺的FFV,并且气体渗透率通常会随FFV的增加而增加。对这些聚酰亚胺进行惰性热解后,在分别于600和800℃热解的CMS膜中也观察到了相似的气体渗透行为。即,即使在该工作所使用的温度范围内热解后,由于结构改变而导致的聚酰亚胺的气体渗透特性也被良好地保持。在所有情况下,气体渗透率都以He> CO_2> O_2> N_2的顺序增加,这表明气体渗透率与动态气体直径的顺序一致。本研究制备的CMS膜在He / N_2,O_2 / N_2和CO_2 / N_2上表现出良好的分离性能,并具有良好的透气性。因此,本工作将提供对有效制备CMS膜的聚合物前体的分子设计的见解。

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