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用于天然气分离的阴离子柱撑金属有机框架的动力学和电子性质

Dynamical and electronic properties of anion-pillared metal-organic frameworks for natural gas separation.

作者信息

Grigoletto Sabrina, Dos Santos Arthur Gomes, de Lima Guilherme Ferreira, De Abreu Heitor Avelino

机构信息

Departamento de Química, ICEx, Universidade Federal de Minas Gerais, Belo Horizonte, MG, 31270-901, Brazil.

出版信息

Phys Chem Chem Phys. 2023 Oct 18;25(40):27532-27541. doi: 10.1039/d3cp02368k.

Abstract

The increasing demand for natural gas as a clean energy source has emphasized the need for efficient gas separation technologies. Metal-organic frameworks (MOFs) have emerged as a promising class of materials for gas separation, with anion-pillared MOFs (APMOFs) gaining attention for their fine-tuned pore design and shape/size selectivity. In this study, we investigate the dynamical and electronic properties of three APMOFs, SIFSIX-3-Cu, SIFSIX-2-Cu-i, and SIFSIX-2-Cu, for the separation of methane from ethane, ethene, propane, propene, and N using computational simulations. Our simulations employ Grand Canonical Monte Carlo (GCMC) and Molecular Dynamics (MD) techniques combined with Density Functional Theory (DFT) calculations. We find that that all three APMOFs exhibit promising separation capabilities for methane from propane and propene based on both thermodynamics and kinetics parameters. In addition, we use Noncovalent Interaction (NCI) analysis to investigate intermolecular interactions and find that the fluorine atoms in the MOF can polarize gas molecules and establish electrostatic interactions with hydrogen atoms in the molecule. Finally, we show that SIFSIX-2-Cu-i is a potential candidate for separating N/CH due to its interpenetration.

摘要

对作为清洁能源的天然气需求不断增加,凸显了高效气体分离技术的必要性。金属有机框架(MOF)已成为一类有前景的气体分离材料,阴离子柱撑MOF(APMOF)因其精细调节的孔设计和形状/尺寸选择性而受到关注。在本研究中,我们使用计算模拟研究了三种APMOF(SIFSIX-3-Cu、SIFSIX-2-Cu-i和SIFSIX-2-Cu)从乙烷、乙烯、丙烷、丙烯和氮气中分离甲烷的动力学和电子性质。我们的模拟采用巨正则蒙特卡罗(GCMC)和分子动力学(MD)技术,并结合密度泛函理论(DFT)计算。我们发现,基于热力学和动力学参数,所有三种APMOF对从丙烷和丙烯中分离甲烷都具有有前景的分离能力。此外,我们使用非共价相互作用(NCI)分析来研究分子间相互作用,发现MOF中的氟原子可以使气体分子极化,并与分子中的氢原子建立静电相互作用。最后,我们表明SIFSIX-2-Cu-i因其互穿结构是分离氮气/甲烷的潜在候选材料。

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