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Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database

[Image: see text] High-throughput computational screening of metal organic frameworks (MOFs) enables the discovery of new promising materials for CO(2) capture and H(2) purification. The number of synthesized MOFs is increasing very rapidly, and computation-ready, experimental MOF databases are bein...

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Autores principales: Avci, Gokay, Erucar, Ilknur, Keskin, Seda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7591111/
https://www.ncbi.nlm.nih.gov/pubmed/32818375
http://dx.doi.org/10.1021/acsami.0c12330
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author Avci, Gokay
Erucar, Ilknur
Keskin, Seda
author_facet Avci, Gokay
Erucar, Ilknur
Keskin, Seda
author_sort Avci, Gokay
collection PubMed
description [Image: see text] High-throughput computational screening of metal organic frameworks (MOFs) enables the discovery of new promising materials for CO(2) capture and H(2) purification. The number of synthesized MOFs is increasing very rapidly, and computation-ready, experimental MOF databases are being updated. Screening the most recent MOF database is essential to identify the best performing materials among several thousands. In this work, we performed molecular simulations of the most recent MOF database and described both the adsorbent and membrane-based separation performances of 10 221 MOFs for CO(2) capture and H(2) purification. The best materials identified for pressure swing adsorption, vacuum swing adsorption, and temperature swing adsorption processes outperformed commercial zeolites and previously studied MOFs in terms of CO(2) selectivity and adsorbent performance score. We then discussed the applicability of Ideal Adsorbed Solution Theory (IAST), effects of inaccessible local pores and catenation in the frameworks and the presence of impurities in CO(2)/H(2) mixture on the adsorbent performance metrics of MOFs. Very large numbers of MOF membranes were found to outperform traditional polymer and porous membranes in terms of H(2) permeability. Our results show that MOFs that are recently added into the updated MOF database have higher CO(2)/H(2) separation potentials than the previously reported MOFs. MOFs with small pores were identified as potential adsorbents for selective capture of CO(2) from H(2), whereas MOFs with high porosities were the promising membranes for selective separation of H(2) from CO(2). This study reveals the importance of enriching the number of MOFs in high-throughput computational screening studies for the discovery of new promising materials for CO(2)/H(2) separation.
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spelling pubmed-75911112020-10-28 Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database Avci, Gokay Erucar, Ilknur Keskin, Seda ACS Appl Mater Interfaces [Image: see text] High-throughput computational screening of metal organic frameworks (MOFs) enables the discovery of new promising materials for CO(2) capture and H(2) purification. The number of synthesized MOFs is increasing very rapidly, and computation-ready, experimental MOF databases are being updated. Screening the most recent MOF database is essential to identify the best performing materials among several thousands. In this work, we performed molecular simulations of the most recent MOF database and described both the adsorbent and membrane-based separation performances of 10 221 MOFs for CO(2) capture and H(2) purification. The best materials identified for pressure swing adsorption, vacuum swing adsorption, and temperature swing adsorption processes outperformed commercial zeolites and previously studied MOFs in terms of CO(2) selectivity and adsorbent performance score. We then discussed the applicability of Ideal Adsorbed Solution Theory (IAST), effects of inaccessible local pores and catenation in the frameworks and the presence of impurities in CO(2)/H(2) mixture on the adsorbent performance metrics of MOFs. Very large numbers of MOF membranes were found to outperform traditional polymer and porous membranes in terms of H(2) permeability. Our results show that MOFs that are recently added into the updated MOF database have higher CO(2)/H(2) separation potentials than the previously reported MOFs. MOFs with small pores were identified as potential adsorbents for selective capture of CO(2) from H(2), whereas MOFs with high porosities were the promising membranes for selective separation of H(2) from CO(2). This study reveals the importance of enriching the number of MOFs in high-throughput computational screening studies for the discovery of new promising materials for CO(2)/H(2) separation. American Chemical Society 2020-08-20 2020-09-16 /pmc/articles/PMC7591111/ /pubmed/32818375 http://dx.doi.org/10.1021/acsami.0c12330 Text en This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Avci, Gokay
Erucar, Ilknur
Keskin, Seda
Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title_full Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title_fullStr Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title_full_unstemmed Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title_short Do New MOFs Perform Better for CO(2) Capture and H(2) Purification? Computational Screening of the Updated MOF Database
title_sort do new mofs perform better for co(2) capture and h(2) purification? computational screening of the updated mof database
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7591111/
https://www.ncbi.nlm.nih.gov/pubmed/32818375
http://dx.doi.org/10.1021/acsami.0c12330
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