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首页> 外文期刊>Macromolecules >High-performance thermally self-cross-linked polymer of intrinsic microporosity (PIM-1) membranes for energy development
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High-performance thermally self-cross-linked polymer of intrinsic microporosity (PIM-1) membranes for energy development

机译:内在微孔(PIM-1)膜的高性能热自交联聚合物,用于能源开发

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摘要

Novel thermally self-cross-linked polymers of intrinsic microporosity (PIM-1) membranes have been prepared by postmodification of PIM-1 at the elevated temperature for a period of 0.5-2 days. The occurrence of cross-linking reaction has been verified by thermogravimetric analysis (TGA), X-ray photoelectron spectrometer (XPS) and gel content analyses. TGA analyses indicate an increase in thermal stability of membranes after the thermal cross-linking treatment. There is also an obvious drop in the maximum decomposition rate comparing to the original PIM-1when membranes are thermally treated for an extended period of time. Both FTIR and XPS results suggest that the nitrile-containing PIM-1 membranes undergo a latent cross-linking reaction, and form stable bulky triazine rings. The resultant cross-linked polymeric membranes exhibit exceptional gas separation performance that surpasses the most recent upper bound of state-of-the-art polymeric membranes for the important gas separations, such as hydrogen purification, CO _2 capture and flue gas separation. In addition, both gas permeability (attributed to the contorted nature, rearrangement and pronounced inefficient packing of PIM polymer chains) and selectivity (attributed to the decrease of chain-to-chain spacing) increase diagonally with the upper bound line when thermal soaking time increases. PIM-1 thermally treated at 300 °C for 2 days has the CO _2 permeability of 4000 barrer with CO _2/CH _4 and CO _2/N _2 ideal selectivity of 54.8 and 41.7, respectively. The thermally cross-linked PIM-1 membranes will probably provide a promising alternative in industrial energy development.
机译:通过在高温下对PIM-1进行后修饰0.5-2天,已经制备了具有固有微孔性(PIM-1)膜的新型热自交联聚合物。交联反应的发生已通过热重分析(TGA),X射线光电子能谱仪(XPS)和凝胶含量分析得到了验证。 TGA分析表明,在热交联处理之后,膜的热稳定性有所提高。与原来的PIM-1相比,如果对膜进行长时间的热处理,最大分解速率也会明显下降。 FTIR和XPS结果均表明,含腈的PIM-1膜会发生潜在的交联反应,并形成稳定的大体积三嗪环。所得的交联的聚合物膜表现出优异的气体分离性能,其对于重要的气体分离(例如氢气纯化,CO _2捕集和烟气分离)超过了最新水平的聚合物膜的上限。另外,当保温时间增加时,气体渗透率(归因于扭曲性质,PIM聚合物链的重排和明显的低效堆积)和选择性(归因于链间距的减小)都随上限线对角地增加。在300°C下热处理2天的PIM-1具有4000 barrer的CO _2渗透率,其中CO _2 / CH 4和CO _2 / N _2的理想选择性分别为54.8和41.7。热交联的PIM-1膜可能会为工业能源开发提供有希望的替代方法。

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