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Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification

CO(2) capture is a crucial strategy to mitigate global warming and protect a sustainable environment. Metal–organic frameworks with large surface area, high flexibility, and reversible adsorption and desorption of gases are good candidates for CO(2) capture. Among the synthesized metal–organic frame...

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Autores principales: Huynh, Nguyen Thi Xuan, Le, Ong Kim, Dung, Tran Phuong, Chihaia, Viorel, Son, Do Ngoc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10204073/
https://www.ncbi.nlm.nih.gov/pubmed/37228675
http://dx.doi.org/10.1039/d3ra01588b
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author Huynh, Nguyen Thi Xuan
Le, Ong Kim
Dung, Tran Phuong
Chihaia, Viorel
Son, Do Ngoc
author_facet Huynh, Nguyen Thi Xuan
Le, Ong Kim
Dung, Tran Phuong
Chihaia, Viorel
Son, Do Ngoc
author_sort Huynh, Nguyen Thi Xuan
collection PubMed
description CO(2) capture is a crucial strategy to mitigate global warming and protect a sustainable environment. Metal–organic frameworks with large surface area, high flexibility, and reversible adsorption and desorption of gases are good candidates for CO(2) capture. Among the synthesized metal–organic frameworks, the MIL-88 series has attracted our attention due to their excellent stability. However, a systematic investigation of CO(2) capture in the MIL-88 series with different organic linkers is not available. Therefore, we clarified the topic via two sections: (1) elucidate physical insights into the CO(2)@MIL-88 interaction by van der Waals-dispersion correction density functional theory calculations, and (2) quantitatively study the CO(2) capture capacity by grand canonical Monte Carlo simulations. We found that the 1π(g), 2σ(u)/1π(u), and 2σ(g) peaks of the CO(2) molecule and the C and O p orbitals of the MIL-88 series are the predominant contributors to the CO(2)@MIL-88 interaction. The MIL-88 series, i.e., MIL-88A, B, C, and D, has the same metal oxide node but different organic linkers: fumarate (MIL-88A), 1,4-benzene-dicarboxylate (MIL-88B), 2,6-naphthalene-dicarboxylate (MIL-88C), and 4,4′-biphenyl-dicarboxylate (MIL-88D). The results exhibited that fumarate should be the best replacement for both the gravimetric and volumetric CO(2) uptakes. We also pointed out a proportional relationship between the capture capacities with electronic properties and other parameters.
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spelling pubmed-102040732023-05-24 Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification Huynh, Nguyen Thi Xuan Le, Ong Kim Dung, Tran Phuong Chihaia, Viorel Son, Do Ngoc RSC Adv Chemistry CO(2) capture is a crucial strategy to mitigate global warming and protect a sustainable environment. Metal–organic frameworks with large surface area, high flexibility, and reversible adsorption and desorption of gases are good candidates for CO(2) capture. Among the synthesized metal–organic frameworks, the MIL-88 series has attracted our attention due to their excellent stability. However, a systematic investigation of CO(2) capture in the MIL-88 series with different organic linkers is not available. Therefore, we clarified the topic via two sections: (1) elucidate physical insights into the CO(2)@MIL-88 interaction by van der Waals-dispersion correction density functional theory calculations, and (2) quantitatively study the CO(2) capture capacity by grand canonical Monte Carlo simulations. We found that the 1π(g), 2σ(u)/1π(u), and 2σ(g) peaks of the CO(2) molecule and the C and O p orbitals of the MIL-88 series are the predominant contributors to the CO(2)@MIL-88 interaction. The MIL-88 series, i.e., MIL-88A, B, C, and D, has the same metal oxide node but different organic linkers: fumarate (MIL-88A), 1,4-benzene-dicarboxylate (MIL-88B), 2,6-naphthalene-dicarboxylate (MIL-88C), and 4,4′-biphenyl-dicarboxylate (MIL-88D). The results exhibited that fumarate should be the best replacement for both the gravimetric and volumetric CO(2) uptakes. We also pointed out a proportional relationship between the capture capacities with electronic properties and other parameters. The Royal Society of Chemistry 2023-05-23 /pmc/articles/PMC10204073/ /pubmed/37228675 http://dx.doi.org/10.1039/d3ra01588b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Huynh, Nguyen Thi Xuan
Le, Ong Kim
Dung, Tran Phuong
Chihaia, Viorel
Son, Do Ngoc
Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title_full Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title_fullStr Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title_full_unstemmed Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title_short Theoretical investigation of CO(2) capture in the MIL-88 series: effects of organic linker modification
title_sort theoretical investigation of co(2) capture in the mil-88 series: effects of organic linker modification
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10204073/
https://www.ncbi.nlm.nih.gov/pubmed/37228675
http://dx.doi.org/10.1039/d3ra01588b
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