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Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1

Metal–organic frameworks (MOFs) are widely used in the adsorption separation of various gases. A fundamental understanding of the effective separation of xylene isomers helps improve aromatic products' separation efficiency and reduce industrial separation costs. Grand Canonical Monte Carlo (GC...

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Autores principales: Ji, Guo-Jian, Xiang, Ting, Zhou, Xiao-Qing, Chen, Le, Zhang, Zhi-Hui, Lu, Bei-Bei, Zhou, Xing-Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9732760/
https://www.ncbi.nlm.nih.gov/pubmed/36540231
http://dx.doi.org/10.1039/d2ra06873g
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author Ji, Guo-Jian
Xiang, Ting
Zhou, Xiao-Qing
Chen, Le
Zhang, Zhi-Hui
Lu, Bei-Bei
Zhou, Xing-Jian
author_facet Ji, Guo-Jian
Xiang, Ting
Zhou, Xiao-Qing
Chen, Le
Zhang, Zhi-Hui
Lu, Bei-Bei
Zhou, Xing-Jian
author_sort Ji, Guo-Jian
collection PubMed
description Metal–organic frameworks (MOFs) are widely used in the adsorption separation of various gases. A fundamental understanding of the effective separation of xylene isomers helps improve aromatic products' separation efficiency and reduce industrial separation costs. Grand Canonical Monte Carlo (GCMC) simulations combined with Molecular Science is widely used to predict gas adsorption and diffusion in single crystals with metal–organic frameworks. We performed a GCMC + MD combined approach to study xylene isomers' adsorption and separation in Cu-HKUST-1 to predict the permeability and selectivity of the ternary gas mixture in the MOF with the adsorption and diffusion usage data. Most current studies take into account the computational cost and difficulty. Most recent research models are limited to the adsorption of a single or specific molecule, such as hydrogen, methane, carbon dioxide, etc. For this reason, we report an attempt to study the adsorption separation of aromatic gases (p-xylene/o-xylene/m-xylene) based on Cu-HKUST-1 single-crystal materials based on some previous research methods with an appropriate increase in computational cost. To predict the adsorption selectivity and permeability of the ternary mixture of xylene isomers on the MOF surface, the model simulation calculates key parameters of gas adsorption, including gas adsorption volume (N), the heat of adsorption (Q(st)), Henry coefficient (K), and diffusion coefficient (D).
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spelling pubmed-97327602022-12-19 Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1 Ji, Guo-Jian Xiang, Ting Zhou, Xiao-Qing Chen, Le Zhang, Zhi-Hui Lu, Bei-Bei Zhou, Xing-Jian RSC Adv Chemistry Metal–organic frameworks (MOFs) are widely used in the adsorption separation of various gases. A fundamental understanding of the effective separation of xylene isomers helps improve aromatic products' separation efficiency and reduce industrial separation costs. Grand Canonical Monte Carlo (GCMC) simulations combined with Molecular Science is widely used to predict gas adsorption and diffusion in single crystals with metal–organic frameworks. We performed a GCMC + MD combined approach to study xylene isomers' adsorption and separation in Cu-HKUST-1 to predict the permeability and selectivity of the ternary gas mixture in the MOF with the adsorption and diffusion usage data. Most current studies take into account the computational cost and difficulty. Most recent research models are limited to the adsorption of a single or specific molecule, such as hydrogen, methane, carbon dioxide, etc. For this reason, we report an attempt to study the adsorption separation of aromatic gases (p-xylene/o-xylene/m-xylene) based on Cu-HKUST-1 single-crystal materials based on some previous research methods with an appropriate increase in computational cost. To predict the adsorption selectivity and permeability of the ternary mixture of xylene isomers on the MOF surface, the model simulation calculates key parameters of gas adsorption, including gas adsorption volume (N), the heat of adsorption (Q(st)), Henry coefficient (K), and diffusion coefficient (D). The Royal Society of Chemistry 2022-12-09 /pmc/articles/PMC9732760/ /pubmed/36540231 http://dx.doi.org/10.1039/d2ra06873g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ji, Guo-Jian
Xiang, Ting
Zhou, Xiao-Qing
Chen, Le
Zhang, Zhi-Hui
Lu, Bei-Bei
Zhou, Xing-Jian
Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title_full Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title_fullStr Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title_full_unstemmed Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title_short Molecular dynamics simulation of adsorption and separation of xylene isomers by Cu-HKUST-1
title_sort molecular dynamics simulation of adsorption and separation of xylene isomers by cu-hkust-1
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9732760/
https://www.ncbi.nlm.nih.gov/pubmed/36540231
http://dx.doi.org/10.1039/d2ra06873g
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