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Perylene based novel mixed matrix membranes with enhanced selective pure and mixed gases (CO2, CH4, and N-2) separation

机译:基于Perylene的新型混合基质膜,具有增强的选择性纯和混合气体(CO2,CH4和N-2)分离

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A combination of organic filler exhibiting CO2 philic nature with a polymer to develop mixed matrix membranes (MMMs) can capture CO2 efficiently. This work reports the synthesis of perylene filler and polysulfone (PSf)-based MMMs via solution casting method. The successful incorporation of fillers, uniformity/asymmetric, and amorphous nature of MMMs were investigated by FT-IR, FESEM, and PXRD analysis, respectively. MMMs demonstrated high thermal stability with significant weight retention over 750 degrees C investigated by TGA analysis. The existence of Lewis's basic functionalities, hydrogen bonding, and pi-pi bonds between the filler-polymer resulted in the formation of highly CO2 philic structure. Results revealed that the perylene is found to be highly porous (1050 m(2)/g) and compatible with the PSf to form additional channels, enhancement of free PSf volume and tendency to prevent the agglomeration and non-selective interfacial voids. It demonstrated improved permeabilities of CO2 (138%), CH4 (59%), and N-2 (60%) without any significant variation in selectivities CO2/CH4 (3%) and CO2/CH4 (7%). Similarly, mixed gas permeabilities were improved for (CO2-CH4-119%) and (CO2-N-2-116%) along with enhanced selectivities (CO2-CH4-50%) and (CO2-N-2-46%). Furthermore, the influence of temperature on gas permeabilities revealed improved kinetic energy and flexibility in the polymer chains. The mechanical strength analysis revealed high filler-polymer compatibility. These results revealed great potential of MMMs for efficient CO2 separation from pre-and post-combustion sources.
机译:有机填料的组合,其具有与聚合物一起形成混合基质膜(MMMS)的二氧化碳性质的组合可以有效地捕获CO 2。该工作通过溶液浇铸方法报告基础填料和聚砜(PSF)的基础丙烯(PSF)的合成。通过FT-IR,FESEM和PXRD分析研究了成功掺入填料,均匀性/不对称和MMMS的无定形性质。 MMMS通过TGA分析研究了超过750℃的显着重量保留的高热稳定性。 Lewis的碱性官能团,氢键合和填料 - 聚合物之间的PI-PI键合产生了高度二氧化碳的基金结构。结果表明,发现Perylene是高度多孔(1050μm(2)/ g)并与PSF相容形成额外的通道,增强游离PSF体积和防止聚集和非选择性界面空隙的趋势。它证明了CO 2(138%),CH 4(59%)和N-2(60%)的改善了渗透性,而无需任何显着的选择性CO 2 / CH 4(3%)和CO 2 / CH 4(7%)。类似地,改善混合气体渗透率(CO 2 -CH4-119%)和(CO2-N-2-116%)以及增强的选择性(CO2-CH4-50%)和(CO2-N-2-46%) 。此外,温度对气体渗透性的影响揭示了高分子链中的动能和柔韧性。机械强度分析显示出高填料 - 聚合物相容性。这些结果揭示了MMMS的巨大潜力,用于从预燃烧源的高效二氧化碳分离。

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