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Paramagnetic Ionic Liquid/Metal Organic Framework Composites for CO2/CH4 and CO2/N2 Separations

机译:CO 2 / CH4和CO2 / N2分离的顺磁离子液/金属有机骨架复合材料

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Global warming is arguably the biggest scientific challenge of the 21st century and its environmental consequences are already noticeable. To mitigate the emissions of greenhouse gases, particularly of CO2, there is an urgent need to design materials with improved adsorbent properties. Five different magnetic ionic liquids were impregnated into the metal–organic framework ZIF-8. The composites were produced by a direct-contact method, and their performance as sorbents for gas separation applications was studied. The impact of the ionic liquid anion on the sorption capacity and ideal CO2/CH4 and CO2/N2 selectivities were studied, focusing on understanding the influence of metal atom and ligand on the adsorbent properties. Reproducible methodology, along with rigorous characterization, were established to assess the impact of the ionic liquid on the performance of the composite materials. Results show that the ionic liquid was well impregnated, the ZIF-8 structure was maintained after ionic liquid impregnation. The produced composites were of microporous nature and were thermally stable. CO2, CH4 and N2 adsorption–desorption isotherms were obtained at 303 K and between 0-16 bar. The adsorption-desorption data of the composites were compared with that obtained for original ZIF-8. The general trend in composites is that the increased gas uptake per available pore volume compensates the pore volume loss. Adsorption data per unit mass showed that composites have reversible sorption, but inferior gas uptake at all pressure ranges. This is due to the observed total pore volume loss by the ionic liquid pore occupation/blockage. In most cases, composites showed superior selectivity performance at all pressure range. In particular, the composite [C4MIM]2[MnCl4]@ZIF-8 shows a different low-pressure selectivity trend from the original MOF, with a 33% increase in the CO2/N2 selectivity at 1 bar and 19% increase in the CO2/CH4 selectivity at 10 bar. This material shows potential for use in a post-combustion CO2 capture application that can contribute to greenhouse gas mitigation.
机译:全球变暖可以说是21世纪最大的科学挑战,其环境后果已经引人注目。为了减轻温室气体的排放,特别是二氧化碳,迫切需要设计具有改善的吸附性能的材料。将五种不同的磁离子液体浸渍到金属有机框架ZIF-8中。通过直接接触方法生产复合材料,研究了它们作为气体分离应用的吸附剂的性能。研究了离子液体阴离子对吸附能力和理想CO 2 / CH 4和CO 2 / N 2选择性的影响,专注于了解金属原子和配体对吸附性质的影响。建立可重复的方法以及严格的表征,以评估离子液体对复合材料性能的影响。结果表明,离子液体浸渍良好,在离子液体浸渍后保持ZIF-8结构。所生产的复合材料具有微孔性质,并热稳定。在303k和0-16巴之间获得CO 2,CH 4和N 2吸附 - 解吸等温线。将复合材料的吸附 - 解吸数据与原始ZIF-8获得的吸附 - 解吸数据进行比较。复合材料的一般趋势是,每可用孔隙体积的增加的气体吸收补偿了孔体积损失。每单位质量的吸附数据显示复合材料具有可逆吸附,但在所有压力范围内都有劣质气体吸收。这是由于观察到离子液体孔占用/堵塞的总孔体积损失。在大多数情况下,复合材料在所有压力范围内都显示出优异的选择性性能。特别地,复合物[C4mim] 2 [MnCl4] ZIF-8显示了来自原始MOF的不同低压选择性趋势,CO 2 / N 2选择性增加33%,在1巴下,CO 2增加19% / ch4在10 bar的选择性。该材料显示出在燃烧后的CO2捕获应用中可以有助于温室气体缓解的可能性。

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