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Polymer Blends for Improved CO(2) Capture Membranes

We investigated the possibility of improving the performance of polysulfone (PSf) membranes to be used in carbon dioxide capture devices by blending PSf with a commercial polyethylene imine, Lupasol G20, previously modified with benzoyl chloride (mG20). Additive amount ranged between 2 and 20 wt %....

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Autores principales: Zare, Alireza, Perna, Lorenza, Nogalska, Adrianna, Ambrogi, Veronica, Cerruti, Pierfrancesco, Tylkowski, Bartosz, García-Valls, Ricard, Giamberini, Marta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6835398/
https://www.ncbi.nlm.nih.gov/pubmed/31614717
http://dx.doi.org/10.3390/polym11101662
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author Zare, Alireza
Perna, Lorenza
Nogalska, Adrianna
Ambrogi, Veronica
Cerruti, Pierfrancesco
Tylkowski, Bartosz
García-Valls, Ricard
Giamberini, Marta
author_facet Zare, Alireza
Perna, Lorenza
Nogalska, Adrianna
Ambrogi, Veronica
Cerruti, Pierfrancesco
Tylkowski, Bartosz
García-Valls, Ricard
Giamberini, Marta
author_sort Zare, Alireza
collection PubMed
description We investigated the possibility of improving the performance of polysulfone (PSf) membranes to be used in carbon dioxide capture devices by blending PSf with a commercial polyethylene imine, Lupasol G20, previously modified with benzoyl chloride (mG20). Additive amount ranged between 2 and 20 wt %. Membranes based on these blends were prepared by phase inversion precipitation and exhibited different morphologies with respect to neat PSf. Surface roughness, water contact angles, and water uptake increased with mG20 content. Mass transfer coefficient was also increased for both N(2) and CO(2); however, this effect was more evident for carbon dioxide. Carbon dioxide absorption performance of composite membranes was evaluated for potassium hydroxide solution in a flat sheet membrane contactor (FSMC) in cross flow module at different liquid flow rates. We found that, at the lowest flow rate, membranes exhibit a very similar behaviour to neat PSf; nevertheless, significant differences can be found at higher flow rates. In particular, the membranes with 2 and 5 wt % additive behave more efficiently than neat PSf. In contrast, 10 and 20 wt % additive content has an adverse effect on CO(2) capture when compared with neat PSf. In the former case, a combination of additive chemical affinity to CO(2) and membrane porosity can be claimed; in the latter case, the remarkably higher wettability and water uptake could determine membrane clogging and consequent loss of efficiency in the capture device.
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spelling pubmed-68353982019-11-25 Polymer Blends for Improved CO(2) Capture Membranes Zare, Alireza Perna, Lorenza Nogalska, Adrianna Ambrogi, Veronica Cerruti, Pierfrancesco Tylkowski, Bartosz García-Valls, Ricard Giamberini, Marta Polymers (Basel) Article We investigated the possibility of improving the performance of polysulfone (PSf) membranes to be used in carbon dioxide capture devices by blending PSf with a commercial polyethylene imine, Lupasol G20, previously modified with benzoyl chloride (mG20). Additive amount ranged between 2 and 20 wt %. Membranes based on these blends were prepared by phase inversion precipitation and exhibited different morphologies with respect to neat PSf. Surface roughness, water contact angles, and water uptake increased with mG20 content. Mass transfer coefficient was also increased for both N(2) and CO(2); however, this effect was more evident for carbon dioxide. Carbon dioxide absorption performance of composite membranes was evaluated for potassium hydroxide solution in a flat sheet membrane contactor (FSMC) in cross flow module at different liquid flow rates. We found that, at the lowest flow rate, membranes exhibit a very similar behaviour to neat PSf; nevertheless, significant differences can be found at higher flow rates. In particular, the membranes with 2 and 5 wt % additive behave more efficiently than neat PSf. In contrast, 10 and 20 wt % additive content has an adverse effect on CO(2) capture when compared with neat PSf. In the former case, a combination of additive chemical affinity to CO(2) and membrane porosity can be claimed; in the latter case, the remarkably higher wettability and water uptake could determine membrane clogging and consequent loss of efficiency in the capture device. MDPI 2019-10-12 /pmc/articles/PMC6835398/ /pubmed/31614717 http://dx.doi.org/10.3390/polym11101662 Text en © 2019 by the authors. 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/).
spellingShingle Article
Zare, Alireza
Perna, Lorenza
Nogalska, Adrianna
Ambrogi, Veronica
Cerruti, Pierfrancesco
Tylkowski, Bartosz
García-Valls, Ricard
Giamberini, Marta
Polymer Blends for Improved CO(2) Capture Membranes
title Polymer Blends for Improved CO(2) Capture Membranes
title_full Polymer Blends for Improved CO(2) Capture Membranes
title_fullStr Polymer Blends for Improved CO(2) Capture Membranes
title_full_unstemmed Polymer Blends for Improved CO(2) Capture Membranes
title_short Polymer Blends for Improved CO(2) Capture Membranes
title_sort polymer blends for improved co(2) capture membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6835398/
https://www.ncbi.nlm.nih.gov/pubmed/31614717
http://dx.doi.org/10.3390/polym11101662
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