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Fabrication of Functionalized MOFs Incorporated Mixed Matrix Hollow Fiber Membrane for Gas Separation

机译:官能化MOF的制备掺入混合基质中空纤维膜进行气体分离

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摘要

The metal-organic framework (MOFs) of MIL-53 was functionalized by aminosilane grafting and then incorporated into Ultem®1000 polymer matrix to fabricate mixed matrix hollow fiber membrane (MMHFM) with high separation performance. SEM, XRD, and TGA were performed to characterize the functionalized MIL-53 and prepared MMHFM. The filler particles were embedded in membrane successfully and dispersed well in the polymer matrix. The incorporation of MOFs endowed MMHFM better thermal stability. Moreover, effects of solvent ratio in spinning dope, spinning condition, and testing temperature on gas separation performance of MMHFM were investigated. By optimizing dope composition, air gap distance, and bore fluid composition, MMHFM containing functionalized MIL-53 achieved excellent gas permeance and CO2/N2 selectivity. The CO2 permeance increased from 12.2 GPU for pure Ultem HFM to 30.9 GPU and the ideal CO2/N2 selectivity was enhanced from 25.4 to 34.7 simultaneously. Additionally, gas permeance increased but the selectivity decreased with the temperature increase, which followed the solution-diffusion based transport mechanism.
机译:MIL-53的金属有机框架(MOF)通过氨基硅烷接枝官能化,然后掺入ULTEM1000聚合物基质中,以制造具有高分离性能的混合基质中空纤维膜(MMHFM)。进行SEM,XRD和TGA以表征官能化MIL-53并制备MMHFM。将填料颗粒成功嵌入膜中并在聚合物基质中分散良好。 MOF的掺入赋予MMHFM更好的热稳定性。此外,研究了纺丝涂料,纺丝条件和测试温度对MMHFM气体分离性能的溶剂比对MMHFM的影响。通过优化掺杂组成,空气间隙距离和孔流体组合物,含有官能化MIL-53的MMHFM实现了优异的气体渗透和CO2 / N2选择性。 CO2渗透率从纯UltemHFM的12.2GPU增加到30.9GPu,并且理想的CO 2 / N 2选择性同时增强25.4至34.7。另外,气体渗透性增加,但随着温度的增加,选择性降低,随后是基于溶液扩散的传输机制。

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