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Polyimides Containing Phosphaphenanthrene Skeleton:Gas-Transport Properties and Molecular Dynamics Simulations

机译:含磷菲骨架的聚酰亚胺:气体传输性质和分子动力学模拟

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摘要

A series of new semifluorinated polyimide (PI) films with phosphaphenanthrene skeleton were prepared by thermal imidization of poly(amic acid)s derived from a diamine monomer: 1,1-bis[2′-trifluoromethyl-4′-(4″-aminophenyl)phenoxy]-1-(6-oxido-6H-dibenz⟨c,e⟩⟨1,2⟩oxaphosphorin-6-yl)ethane on reaction with four structurally different aromatic dianhydrides. The chemical structures of the polymers were established by Fourier transform infrared and 1H NMR spectroscopy techniques. The polymers showed a good combination of thermal and mechanical properties (Td10 up to 416 °C under synthetic air and tensile strength up to 91 MPa), low dielectric constant (2.10–2.55 at 1 MHz), and Tg values as high as 261 °C. Gas permeabilities of these films were investigated for four different gases CO2, O2, N2, and CH4. The PI films showed high gas permeability (PCO2 up to 175 and PO2 up to 64 barrer) with high permselectivity (PCO2/PCH4 up to 51 and PO2/PN2 up to 7.1), and the values are better than those of many other similar polymers reported earlier. For the O2/N2 gas pair, the PIs (PIA) surpassed the present upper boundary limit drawn by Robeson. Adetailed molecular dynamics (MD) simulation study has been conductedto understand better the gas-transport properties. The effect of phosphaphenanthreneskeleton, its spatial arrangement, and size distribution functionof the free volume were studied using molecular dynamics (MD) simulationand the results are correlated with the experimental data.
机译:通过热酰亚胺化二胺单体衍生的聚(酰胺酸)制备了一系列具有磷菲骨架的新型半氟化聚酰亚胺(PI)膜:1,1-双[2'-三氟甲基-4'-(4″-氨基苯基)苯氧基] -1-(6-氧化-6H-dibenz⟨c,e⟩⟨1,2⟩氧杂磷酰基-6-基)乙烷与四种结构不同的芳族二酐反应。通过傅立叶变换红外光谱和 1 H NMR光谱技术建立了聚合物的化学结构。聚合物表现出良好的热和机械性能组合(在合成空气下,Td10高达416°C,拉伸强度高达91 MPa),低介电常数(在1 MHz下为2.10–2.55)和Tg值高达261° C。研究了这些薄膜在CO2,O2,N2和CH4四种不同气体下的透气性。 PI膜显示出高透气性(PCO2高达175和PO2高达64 barrer)和高选择性(PCO2 / PCH4高达51,PO2 / P N 2 向上到7.1),并且该值比之前报道的许多其他类似聚合物更好。对于O 2 / N 2 气体对,PI(PIA)超过了Robeson制定的当前上限。一个进行了详细的分子动力学(MD)模拟研究更好地了解气体的输送特性。磷菲的作用骨架,其空间排列和大小分布函数使用分子动力学(MD)模拟研究自由体积结果与实验数据相关。

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