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Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite

[Image: see text] Cation-exchanged zeolites are of potential use in pressure swing adsorption (PSA) technologies for CO(2) capture applications. Published experimental data for CO(2)/CH(4), CO(2)/N(2), and CO(2)/C(3)H(8) mixture adsorption in NaX zeolite, also commonly referred to by its trade name...

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Autores principales: Krishna, Rajamani, van Baten, Jasper M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7439389/
https://www.ncbi.nlm.nih.gov/pubmed/32832806
http://dx.doi.org/10.1021/acsomega.0c02730
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author Krishna, Rajamani
van Baten, Jasper M.
author_facet Krishna, Rajamani
van Baten, Jasper M.
author_sort Krishna, Rajamani
collection PubMed
description [Image: see text] Cation-exchanged zeolites are of potential use in pressure swing adsorption (PSA) technologies for CO(2) capture applications. Published experimental data for CO(2)/CH(4), CO(2)/N(2), and CO(2)/C(3)H(8) mixture adsorption in NaX zeolite, also commonly referred to by its trade name 13X, have demonstrated that the ideal adsorbed solution theory (IAST) fails to provide adequately accurate estimates of mixture adsorption equilibrium. In particular, the IAST estimates of CO(2)/CH(4) and CO(2)/N(2) selectivities are significantly higher than those realized in experiments. For CO(2)/C(3)H(8) mixtures, the IAST fails to anticipate the selectivity reversal phenomena observed in experiments. In this article, configurational-bias Monte Carlo (CBMC) simulations are employed to provide confirmation of the observed thermodynamic nonidealities in adsorption of CO(2)/CH(4), CO(2)/N(2), and CO(2)/C(3)H(8) mixtures in NaX zeolite. The CBMC simulations provide valuable insights into the root cause of the failure of the IAST, whose applicability mandates a homogeneous distribution of adsorbates within the pore landscape. By sampling 10(5) equilibrated spatial locations of individual guest molecules within the cages of NaX zeolite, the radial distribution functions (RDFs) of each of the pairs of guest molecules are determined. Examination of the RDFs clearly reveals congregation effects, wherein the CO(2) guests occupy positions in close proximity to the Na(+) cations. The positioning of the partner molecules (CH(4), N(2), or C(3)H(8)) is further removed from the CO(2) guest molecules; consequently, the competition in mixture adsorption faced by the partner molecules is less severe than that anticipated by the IAST. The important message to emerge from this article is the need for quantification of thermodynamic nonideality effects in mixture adsorption.
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spelling pubmed-74393892020-08-21 Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite Krishna, Rajamani van Baten, Jasper M. ACS Omega [Image: see text] Cation-exchanged zeolites are of potential use in pressure swing adsorption (PSA) technologies for CO(2) capture applications. Published experimental data for CO(2)/CH(4), CO(2)/N(2), and CO(2)/C(3)H(8) mixture adsorption in NaX zeolite, also commonly referred to by its trade name 13X, have demonstrated that the ideal adsorbed solution theory (IAST) fails to provide adequately accurate estimates of mixture adsorption equilibrium. In particular, the IAST estimates of CO(2)/CH(4) and CO(2)/N(2) selectivities are significantly higher than those realized in experiments. For CO(2)/C(3)H(8) mixtures, the IAST fails to anticipate the selectivity reversal phenomena observed in experiments. In this article, configurational-bias Monte Carlo (CBMC) simulations are employed to provide confirmation of the observed thermodynamic nonidealities in adsorption of CO(2)/CH(4), CO(2)/N(2), and CO(2)/C(3)H(8) mixtures in NaX zeolite. The CBMC simulations provide valuable insights into the root cause of the failure of the IAST, whose applicability mandates a homogeneous distribution of adsorbates within the pore landscape. By sampling 10(5) equilibrated spatial locations of individual guest molecules within the cages of NaX zeolite, the radial distribution functions (RDFs) of each of the pairs of guest molecules are determined. Examination of the RDFs clearly reveals congregation effects, wherein the CO(2) guests occupy positions in close proximity to the Na(+) cations. The positioning of the partner molecules (CH(4), N(2), or C(3)H(8)) is further removed from the CO(2) guest molecules; consequently, the competition in mixture adsorption faced by the partner molecules is less severe than that anticipated by the IAST. The important message to emerge from this article is the need for quantification of thermodynamic nonideality effects in mixture adsorption. American Chemical Society 2020-08-07 /pmc/articles/PMC7439389/ /pubmed/32832806 http://dx.doi.org/10.1021/acsomega.0c02730 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Krishna, Rajamani
van Baten, Jasper M.
Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title_full Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title_fullStr Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title_full_unstemmed Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title_short Using Molecular Simulations for Elucidation of Thermodynamic Nonidealities in Adsorption of CO(2)-Containing Mixtures in NaX Zeolite
title_sort using molecular simulations for elucidation of thermodynamic nonidealities in adsorption of co(2)-containing mixtures in nax zeolite
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7439389/
https://www.ncbi.nlm.nih.gov/pubmed/32832806
http://dx.doi.org/10.1021/acsomega.0c02730
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