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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Constructing Gas Molecule Transport Channels in Thermally Rearranged Multiblock Poly(benzoxazole-co-imide) Membranes for Effective CO2/CH4 Separation
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Constructing Gas Molecule Transport Channels in Thermally Rearranged Multiblock Poly(benzoxazole-co-imide) Membranes for Effective CO2/CH4 Separation

机译:构建热重排倍频(苯并恶唑 - 酰亚胺)膜中的气体分子输送通道,用于有效CO2 / CH4分离

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摘要

A series of multiblock poly(benzoxazole-co-imide) (PBOI) membranes were prepared via thermal rearrangement of their corresponding multiblock copolyimide (CPI) precursors based on 4,4'-(hexafluoroisopropylidene) diphthalic anhydride (6FDA), 2,2'-bis(3-amino-4-hydroxy-phenyl) hexafluoropropane (APAF), and 5-amino-2-(4-aminobenzene) benzimidazole (BIA). For ortho-hydroxy-functionalized CPI precursors, the difference in stacking behavior between the 6FDA-APAF and 6FDA-BIA blocks results in a weak microphase separation in CPI membranes, whereas the random precursor exhibits a homogeneous morphology, which has been identified by dynamic mechanical analysis, small-angle X-ray scattering, and atomic force microscopy analysis. After the subsequent thermal rearrangement at 420 degrees C, the microphase separation was also observed in the multiblock poly(benzoxazole-coimide) (TR-PBOI) membranes with an enlarged domain size. The impacts of the sequence structure on the membrane phase-separation behavior and mechanical and gas separation properties were investigated. Comparatively, an obvious increase in the CO2/CH4 gas separation property from the random to TR-PBOI membranes was observed. Specially, the resultant multiblock A(40)B(40)-TR-420 membrane possesses a CO2 permeability of 92 Barrer and a CO2/CH4 selectivity of 54.7, which is substantially higher than the values of the random-PBOI-420 membrane (CO2 permeability of 40.2 Barrer and CO2/CH4 of 58) and those of recently reported TR-PBOI membranes. The appealing gas separation performance of the multiblock PBOI membranes can be attributed to their microphase-separated morphology, in which continuous percolating microcavities formed in the thermal rearrangement reaction provide transport channels for gas molecules. The present study demonstrates that the modification of the micromorphological structure of membranes can effectively tune their final gas separation properties.
机译:通过基于4,4' - (六氟异丙基)二苯二甲酸酐(6FDA),2,2',通过其相应的多嵌段共聚物(CPI)前体的热重排来制备一系列多嵌段聚(苯并恶唑-Co-in-Imide)(PbOi)膜。 -bis(3-氨基-4-羟基 - 苯基)六氟丙烷(APAF)和5-氨基-2-(4-氨基苯)苯并咪唑(BIA)。对于正交 - 羟基官能化的CPI前体,6FDA-APAF和6FDA-BIA嵌段之间的堆叠行为的差异导致CPI膜中的弱汇流激素分离,而随机前体表现出均匀的形态,这已经通过动态机械识别分析,小角度X射线散射和原子力显微镜分析。在420℃下随后的热重排之后,在多嵌段聚(苯并恶唑 - 亚酰亚胺)(Tr-Pboi)膜中也观察到微相分离,其具有放大的畴尺寸。研究了序列结构对膜相分离行为和机械和气体分离性能的影响。相比之下,观察到从随机到Tr-Pboi膜的CO 2 / CH 4气体分离性的明显增加。特别地,所得多嵌段A(40)B(40)-TR-420膜具有92个漏极的CO2渗透性,CO 2 / CH 4选择性为54.7,其基本上高于随机Pboi-420膜的值( 40.2巴勒和CO2 / CH4的CO 2渗透率为58)和最近报告的TR-PBOI膜。多嵌段Pboi膜的吸引气体分离性能可归因于它们的微相分离形态,其中在热重排反应中形成的连续渗透微腔提供用于气体分子的传输通道。本研究表明,膜微晶结构的改性可以有效地调谐其最终的气体分离性能。

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