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Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation

Mixed matrix membranes (MMMs) provide the opportunity to test new porous materials in challenging applications. A series of low-cost porous organic polymer (POPs) networks, possessing tunable porosity and high CO(2) uptake, has been obtained by aromatic electrophilic substitution reactions of biphen...

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Autores principales: Matesanz-Niño, Laura, Moranchel-Pérez, Jorge, Álvarez, Cristina, Lozano, Ángel E., Casado-Coterillo, Clara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610931/
https://www.ncbi.nlm.nih.gov/pubmed/37896379
http://dx.doi.org/10.3390/polym15204135
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author Matesanz-Niño, Laura
Moranchel-Pérez, Jorge
Álvarez, Cristina
Lozano, Ángel E.
Casado-Coterillo, Clara
author_facet Matesanz-Niño, Laura
Moranchel-Pérez, Jorge
Álvarez, Cristina
Lozano, Ángel E.
Casado-Coterillo, Clara
author_sort Matesanz-Niño, Laura
collection PubMed
description Mixed matrix membranes (MMMs) provide the opportunity to test new porous materials in challenging applications. A series of low-cost porous organic polymer (POPs) networks, possessing tunable porosity and high CO(2) uptake, has been obtained by aromatic electrophilic substitution reactions of biphenyl, 9,10-dihydro-9,10-dimethyl-9,10-ethanoanthracene (DMDHA), triptycene and 1,3,5-triphenylbenzene (135TPB) with dimethoxymethane (DMM). These materials have been characterized by FTIR, (13)C NMR, WAXD, TGA, SEM, and CO(2) uptake. Finally, different loadings of these POPs have been introduced into Matrimid, Pebax, and chitosan:polyvinyl alcohol blends as polymeric matrices to prepare MMMs. The CO(2)/CH(4) separation performance of these MMMs has been evaluated by single and mixed gas permeation experiments at 4 bar and room temperature. The effect of the porosity of the porous fillers on the membrane separation behavior and the compatibility between them and the different polymer matrices on membrane design and fabrication has been studied by Maxwell model equations as a function of the gas permeability of the pure polymers, porosity, and loading of the fillers in the MMMs. Although the gas transport properties showed an increasing deviation from ideal Maxwell equation prediction with increasing porosity of the POP fillers and increasing hydrophilicity of the polymer matrices, the behavior of biopolymer-based CS:PVA MMMs approached that of Pebax-based MMMs, giving scope to not only new filler materials but also sustainable polymer choices to find a place in membrane technology.
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spelling pubmed-106109312023-10-28 Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation Matesanz-Niño, Laura Moranchel-Pérez, Jorge Álvarez, Cristina Lozano, Ángel E. Casado-Coterillo, Clara Polymers (Basel) Article Mixed matrix membranes (MMMs) provide the opportunity to test new porous materials in challenging applications. A series of low-cost porous organic polymer (POPs) networks, possessing tunable porosity and high CO(2) uptake, has been obtained by aromatic electrophilic substitution reactions of biphenyl, 9,10-dihydro-9,10-dimethyl-9,10-ethanoanthracene (DMDHA), triptycene and 1,3,5-triphenylbenzene (135TPB) with dimethoxymethane (DMM). These materials have been characterized by FTIR, (13)C NMR, WAXD, TGA, SEM, and CO(2) uptake. Finally, different loadings of these POPs have been introduced into Matrimid, Pebax, and chitosan:polyvinyl alcohol blends as polymeric matrices to prepare MMMs. The CO(2)/CH(4) separation performance of these MMMs has been evaluated by single and mixed gas permeation experiments at 4 bar and room temperature. The effect of the porosity of the porous fillers on the membrane separation behavior and the compatibility between them and the different polymer matrices on membrane design and fabrication has been studied by Maxwell model equations as a function of the gas permeability of the pure polymers, porosity, and loading of the fillers in the MMMs. Although the gas transport properties showed an increasing deviation from ideal Maxwell equation prediction with increasing porosity of the POP fillers and increasing hydrophilicity of the polymer matrices, the behavior of biopolymer-based CS:PVA MMMs approached that of Pebax-based MMMs, giving scope to not only new filler materials but also sustainable polymer choices to find a place in membrane technology. MDPI 2023-10-18 /pmc/articles/PMC10610931/ /pubmed/37896379 http://dx.doi.org/10.3390/polym15204135 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Matesanz-Niño, Laura
Moranchel-Pérez, Jorge
Álvarez, Cristina
Lozano, Ángel E.
Casado-Coterillo, Clara
Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title_full Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title_fullStr Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title_full_unstemmed Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title_short Mixed Matrix Membranes Using Porous Organic Polymers (POPs)—Influence of Textural Properties on CO(2)/CH(4) Separation
title_sort mixed matrix membranes using porous organic polymers (pops)—influence of textural properties on co(2)/ch(4) separation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610931/
https://www.ncbi.nlm.nih.gov/pubmed/37896379
http://dx.doi.org/10.3390/polym15204135
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