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用于CO/CH分离的多变量多晶金属有机框架膜

Multivariate Polycrystalline Metal-Organic Framework Membranes for CO/CH Separation.

作者信息

Fan Weidong, Ying Yunpan, Peh Shing Bo, Yuan Hongye, Yang Ziqi, Yuan Yi Di, Shi Dongchen, Yu Xin, Kang Chengjun, Zhao Dan

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore, 117585 Singapore.

出版信息

J Am Chem Soc. 2021 Oct 27;143(42):17716-17723. doi: 10.1021/jacs.1c08404. Epub 2021 Oct 5.

Abstract

Membrane technology is attractive for natural gas separation (removing CO, HO, and hydrocarbons from CH) because of membranes' low energy consumption and small environmental footprint. Compared to polymeric membranes, microporous inorganic membranes such as silicoaluminophosphate-34 (SAPO-34) membrane can retain their separation performance under conditions close to industrial requirements. However, moisture and hydrocarbons in natural gas can be strongly adsorbed in the pores of those membranes, thereby reducing the membrane separation performance. Herein, we report the fabrication of a polycrystalline MIL-160 membrane on an AlO substrate by in situ hydrothermal synthesis. The MIL-160 membrane with a thickness of ca. 3 μm shows a remarkable molecular sieving effect in gas separation. Besides, the pore size and environment of the MIL-160 membrane can be precisely controlled using reticular chemistry by regulating the size and functionality of the ligand. Interestingly, the more polar fluorine-functionalized multivariate MIL-160/CAU-10-F membrane exhibits a 10.7% increase in selectivity for CO/CH separation and a 31.2% increase in CO permeance compared to those of the MIL-160 membrane. In addition, hydrophobic MIL-160 membranes and MIL-160/CAU-10-F membranes are more resistant to water vapor and hydrocarbons than the hydrophilic SAPO-34 membranes.

摘要

膜技术对于天然气分离(从CH中去除CO、HO和碳氢化合物)具有吸引力,因为膜具有低能耗和小的环境足迹。与聚合物膜相比,微孔无机膜如硅铝磷酸盐-34(SAPO-34)膜在接近工业要求的条件下可以保持其分离性能。然而,天然气中的水分和碳氢化合物会强烈吸附在这些膜的孔中,从而降低膜的分离性能。在此,我们报道了通过原位水热合成在AlO衬底上制备多晶MIL-160膜。厚度约为3μm的MIL-160膜在气体分离中表现出显著的分子筛效应。此外,通过调节配体的大小和官能团,利用网状化学可以精确控制MIL-160膜的孔径和环境。有趣的是,与MIL-160膜相比,极性更强的氟官能化多元MIL-160/CAU-10-F膜在CO/CH分离中的选择性提高了10.7%,CO渗透率提高了31.2%。此外,疏水的MIL-160膜和MIL-160/CAU-10-F膜比亲水性的SAPO-34膜更耐水蒸气和碳氢化合物。

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