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Carbon molecular sieve membranes derived from pseudo-interpenetrating polymer networks for gas separation and carbon capture

机译:由伪互穿聚合物网络衍生的碳分子筛膜,用于气体分离和碳捕获

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摘要

The design of polyimide-based pseudo-interpenetrating polymer networks (IPNs) is proposed to tailor the molecular structure of polymeric precursors for fabricating carbon molecular sieve membranes (CMSMs). To demonstrate the feasibility of this concept, pseudo-IPNs comprising of poly(2,3,5,6-phenylene-2,2'-bis(3,4-carboxylphenyl)hexafluoro-propane) diimide (6FDA-TMPDA) and 2,6-bis(4-azidobenzylidene)-4-methylcyclohexanone (azide) are used to fabricate CMSMs. The gas transport properties of CMSMs are dependent on the azide loading and heat treatment temperature. During the pyrolysis, two competing processes of pore evolution from the released gases and molecular transformation are occurring simultaneously. The creation of pores determines the structural morphology of the CMSM at a low pyrolysis temperature of 550 °C while the molecular rearrangement is the governing factor for carbonization at an elevated temperature of 800 °C. The CMSMs prepared at 550 °C display good CO2/N2 separation performance. The 6FDA-TMPDA/azide (90-10) CMSM pyrolyzed at 550 °C shows a CO2 permeability of 9290 ± 170 Barrer and an ideal CO2/N2 selectivity of 26.0 ± 0.8. CMSMs with high CO2/CH4 selectivity can be fabricated by carbonization at 800 °C. The 6FDA-TMPDA/azide (70-30) CMSM prepared at 800 °C has a CO2 permeability of 280 ± 7.0 Barrer and CO2/CH4 selectivity of 164 ± 6.0. The CMSMs derived from polyimide/azide pseudo-IPNs exhibit potential use in pre- and post-combustion CO2 capture.
机译:提出了基于聚酰亚胺的伪互穿聚合物网络(IPN)的设计,以定制用于制造碳分子筛膜(CMSM)的聚合物前体的分子结构。为证明此概念的可行性,由聚(2,3,5,6-亚苯基-2,2'-双(3,4-羧基苯基)六氟丙烷)二酰亚胺(6FDA-TMPDA)和2组成的伪IPN ,6-双(4-叠氮基亚苄基)-4-甲基环己酮(叠氮化物)用于制备CMSM。 CMSMs的气体传输特性取决于叠氮化物的负载量和热处理温度。在热解过程中,同时发生了两个相互竞争的过程:从释放的气体中演化出孔,并发生分子转化。孔的形成决定了在550°C的低热解温度下CMSM的结构形态,而分子重排是在800°C的高温下碳化的决定因素。在550°C下制备的CMSM表现出良好的CO2 / N2分离性能。在550°C时热解的6FDA-TMPDA /叠氮化物(90-10)CMSM的CO2渗透率为9290±170 Barrer,理想的CO2 / N2选择性为26.0±0.8。具有高CO2 / CH4选择性的CMSM可以通过在800°C下碳化来制备。在800°C下制备的6FDA-TMPDA /叠氮化物(70-30)CMSM的CO2渗透率为280±7.0 Barrer,CO2 / CH4选择性为164±6.0。衍生自聚酰亚胺/叠氮化物假IPN的CMSM在燃烧前和燃烧后CO2捕获中具有潜在用途。

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