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二维金属有机框架Fe/Ni-PTC实现高效氦气分离:一项理论研究

Efficient Helium Separation with Two-Dimensional Metal-Organic Framework Fe/Ni-PTC: A Theoretical Study.

作者信息

Wang Jingyuan, Li Yixiang, Yang Yanmei, Li Yongqiang, Zhao Mingwen, Li Weifeng, Guan Jing, Qu Yuanyuan

机构信息

School of Physics, Shandong University, Jinan 250100, China.

College of Chemistry, Chemical Engineering and Materials Science, Shandong Normal University, Jinan 250014, China.

出版信息

Membranes (Basel). 2021 Nov 26;11(12):927. doi: 10.3390/membranes11120927.

Abstract

Helium (He) is one of the indispensable and rare strategic materials for national defense and high-tech industries. However, daunting challenges have to be overcome for the supply shortage of He resources. Benefitted from the wide pore size distribution, sufficient intrinsic porosity, and high specific surface area, metal-organic framework (MOF) materials are prospective candidates for He purification in the membrane-based separation technology. In this work, through first-principles calculations and molecular dynamics (MD) simulations, we studied the permeability and filtration performance of He by the newly synthesized two-dimensional Fe-PTC MOF and its analogue Ni-PTC MOF. We found that both Fe-PTC and Ni-PTC have superior high performance for He separation. The selectivity of He over N was calculated to be 10 for Fe-PTC and ~10 for Ni-PTC, respectively, both higher than most of the previously proposed 2D porous membranes. Meanwhile, high He permeance (1010 mol s m Pa) can be obtained for the Fe/Ni-PTC MOF for temperatures ranging from 200 to 500 K. Therefore, the present study offers a highly prospective membrane for He separation, which has great potential in industrial application.

摘要

氦气(He)是国防和高科技产业不可或缺的稀有战略物资之一。然而,氦资源供应短缺问题亟待攻克。金属有机框架(MOF)材料因其孔径分布广、固有孔隙率高、比表面积大,有望成为基于膜分离技术的氦气提纯材料。本文通过第一性原理计算和分子动力学(MD)模拟,研究了新合成的二维Fe-PTC MOF及其类似物Ni-PTC MOF对氦气的渗透和过滤性能。研究发现,Fe-PTC和Ni-PTC在氦气分离方面均具有卓越的高性能。计算得出,Fe-PTC对氦气相对于氮气的选择性约为10,Ni-PTC约为10,均高于此前大多数已报道的二维多孔膜。同时,在200至500 K的温度范围内,Fe/Ni-PTC MOF可实现较高的氦气渗透率(10~10 mol s m Pa)。因此,本研究为氦气分离提供了极具前景的膜材料,具有巨大的工业应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/862b/8708020/fef7056eb3a8/membranes-11-00927-g001.jpg

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