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Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases

Membrane technology can play a very influential role in the separation of the constituents of HFC refrigerant gas mixtures, which usually exhibit azeotropic or near-azeotropic behavior, with the goal of promoting the reuse of value-added compounds in the manufacture of new low-global warming potenti...

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Autores principales: Pardo, Fernando, Gutiérrez-Hernández, Sergio V., Hermida-Merino, Carolina, Araújo, João M. M., Piñeiro, Manuel M., Pereiro, Ana B., Zarca, Gabriel, Urtiaga, Ane
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7996786/
https://www.ncbi.nlm.nih.gov/pubmed/33652731
http://dx.doi.org/10.3390/nano11030582
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author Pardo, Fernando
Gutiérrez-Hernández, Sergio V.
Hermida-Merino, Carolina
Araújo, João M. M.
Piñeiro, Manuel M.
Pereiro, Ana B.
Zarca, Gabriel
Urtiaga, Ane
author_facet Pardo, Fernando
Gutiérrez-Hernández, Sergio V.
Hermida-Merino, Carolina
Araújo, João M. M.
Piñeiro, Manuel M.
Pereiro, Ana B.
Zarca, Gabriel
Urtiaga, Ane
author_sort Pardo, Fernando
collection PubMed
description Membrane technology can play a very influential role in the separation of the constituents of HFC refrigerant gas mixtures, which usually exhibit azeotropic or near-azeotropic behavior, with the goal of promoting the reuse of value-added compounds in the manufacture of new low-global warming potential (GWP) refrigerant mixtures that abide by the current F-gases regulations. In this context, the selective recovery of difluorometane (R32, GWP = 677) from the commercial blend R410A (GWP = 1924), an equimass mixture of R32 and pentafluoroethane (R125, GWP = 3170), is sought. To that end, this work explores for the first time the separation performance of novel mixed-matrix membranes (MMMs) functionalized with ioNanofluids (IoNFs) consisting in a stable suspension of exfoliated graphene nanoplatelets (xGnP) into a fluorinated ionic liquid (FIL), 1-ethyl-3-methylpyridinium perfluorobutanesulfonate ([C(2)C(1)py][C(4)F(9)SO(3)]). The results show that the presence of IoNF in the MMMs significantly enhances gas permeation, yet at the expense of slightly decreasing the selectivity of the base polymer. The best results were obtained with the MMM containing 40 wt% IoNF, which led to an improved permeability of the gas of interest (P(R32) = 496 barrer) with respect to that of the neat polymer (P(R32) = 279 barrer) with a mixed-gas separation factor of 3.0 at the highest feed R410A pressure tested. Overall, the newly fabricated IoNF-MMMs allowed the separation of the near-azeotropic R410A mixture to recover the low-GWP R32 gas, which is of great interest for the circular economy of the refrigeration sector.
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spelling pubmed-79967862021-03-27 Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases Pardo, Fernando Gutiérrez-Hernández, Sergio V. Hermida-Merino, Carolina Araújo, João M. M. Piñeiro, Manuel M. Pereiro, Ana B. Zarca, Gabriel Urtiaga, Ane Nanomaterials (Basel) Article Membrane technology can play a very influential role in the separation of the constituents of HFC refrigerant gas mixtures, which usually exhibit azeotropic or near-azeotropic behavior, with the goal of promoting the reuse of value-added compounds in the manufacture of new low-global warming potential (GWP) refrigerant mixtures that abide by the current F-gases regulations. In this context, the selective recovery of difluorometane (R32, GWP = 677) from the commercial blend R410A (GWP = 1924), an equimass mixture of R32 and pentafluoroethane (R125, GWP = 3170), is sought. To that end, this work explores for the first time the separation performance of novel mixed-matrix membranes (MMMs) functionalized with ioNanofluids (IoNFs) consisting in a stable suspension of exfoliated graphene nanoplatelets (xGnP) into a fluorinated ionic liquid (FIL), 1-ethyl-3-methylpyridinium perfluorobutanesulfonate ([C(2)C(1)py][C(4)F(9)SO(3)]). The results show that the presence of IoNF in the MMMs significantly enhances gas permeation, yet at the expense of slightly decreasing the selectivity of the base polymer. The best results were obtained with the MMM containing 40 wt% IoNF, which led to an improved permeability of the gas of interest (P(R32) = 496 barrer) with respect to that of the neat polymer (P(R32) = 279 barrer) with a mixed-gas separation factor of 3.0 at the highest feed R410A pressure tested. Overall, the newly fabricated IoNF-MMMs allowed the separation of the near-azeotropic R410A mixture to recover the low-GWP R32 gas, which is of great interest for the circular economy of the refrigeration sector. MDPI 2021-02-26 /pmc/articles/PMC7996786/ /pubmed/33652731 http://dx.doi.org/10.3390/nano11030582 Text en © 2021 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 (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Pardo, Fernando
Gutiérrez-Hernández, Sergio V.
Hermida-Merino, Carolina
Araújo, João M. M.
Piñeiro, Manuel M.
Pereiro, Ana B.
Zarca, Gabriel
Urtiaga, Ane
Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title_full Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title_fullStr Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title_full_unstemmed Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title_short Integration of Stable Ionic Liquid-Based Nanofluids into Polymer Membranes. Part II: Gas Separation Properties toward Fluorinated Greenhouse Gases
title_sort integration of stable ionic liquid-based nanofluids into polymer membranes. part ii: gas separation properties toward fluorinated greenhouse gases
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7996786/
https://www.ncbi.nlm.nih.gov/pubmed/33652731
http://dx.doi.org/10.3390/nano11030582
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