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Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems

Liquid membranes usually have three main constructive variants: bulk liquid membranes (BLM), supported liquid membranes (SLM) and emulsion liquid membranes (ELM). Designing hybrid variants is very topical, with the main purpose of increasing the flow of substance through the membrane but also of imp...

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Autores principales: Ferencz (Dinu), Andreea, Grosu, Alexandra Raluca, Al-Ani, Hussam Nadum Abdalraheem, Nechifor, Aurelia Cristina, Tanczos, Szidonia-Katalin, Albu, Paul Constantin, Crăciun, Mihaela Emanuela, Ioan, Mihail-Răzvan, Grosu, Vlad-Alexandru, Nechifor, Gheorghe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8877906/
https://www.ncbi.nlm.nih.gov/pubmed/35207110
http://dx.doi.org/10.3390/membranes12020190
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author Ferencz (Dinu), Andreea
Grosu, Alexandra Raluca
Al-Ani, Hussam Nadum Abdalraheem
Nechifor, Aurelia Cristina
Tanczos, Szidonia-Katalin
Albu, Paul Constantin
Crăciun, Mihaela Emanuela
Ioan, Mihail-Răzvan
Grosu, Vlad-Alexandru
Nechifor, Gheorghe
author_facet Ferencz (Dinu), Andreea
Grosu, Alexandra Raluca
Al-Ani, Hussam Nadum Abdalraheem
Nechifor, Aurelia Cristina
Tanczos, Szidonia-Katalin
Albu, Paul Constantin
Crăciun, Mihaela Emanuela
Ioan, Mihail-Răzvan
Grosu, Vlad-Alexandru
Nechifor, Gheorghe
author_sort Ferencz (Dinu), Andreea
collection PubMed
description Liquid membranes usually have three main constructive variants: bulk liquid membranes (BLM), supported liquid membranes (SLM) and emulsion liquid membranes (ELM). Designing hybrid variants is very topical, with the main purpose of increasing the flow of substance through the membrane but also of improving the selectivity. This paper presents the operational limits of some kind of hybrid membrane constituted as a bulk liquid membrane (BLM), but which works by dispersing the aqueous source (SP) and receiving (RP) phases, with the membrane itself being a dispersion of nanoparticles in an organic solvent (NP–OSM). The approached operational parameters were the volume of phases of the hybrid membrane system, the thickness of the liquid membrane, the working temperature, the flow of aqueous phases, the droplet size of the aqueous phases dispersed across the membrane, the nature and concentration of nanoparticles in the membrane, the pH difference between the aqueous phases, the nature of the organic solvent, the salt concentration in the aqueous phases and the nature of transported chemical species. For this study, silver ion (SI) and p-nitrophenol (PNP) were chosen as transportable chemical species, the n-aliphatic alcohols (C(6)…C(12)) as membrane organic solvents, 10–undecenoic acid (UDAc) and 10-undecylenic alcohol (UDAl) as carriers and magnetic iron oxides as nanoparticles dispersed in the membrane phase. Under the experimentally established operating conditions, separation efficiencies of over 90% were obtained for both ionic and molecular chemical species (silver ions and p-nitrophenol). The results showed the possibility of increasing the flow of transported chemical species by almost 10 times for the silver ion and approximately 100 times for p-nitrophenol, through the appropriate choice of operational parameters, but they also exposed their limits in relation to the stability of the membrane system.
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spelling pubmed-88779062022-02-26 Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems Ferencz (Dinu), Andreea Grosu, Alexandra Raluca Al-Ani, Hussam Nadum Abdalraheem Nechifor, Aurelia Cristina Tanczos, Szidonia-Katalin Albu, Paul Constantin Crăciun, Mihaela Emanuela Ioan, Mihail-Răzvan Grosu, Vlad-Alexandru Nechifor, Gheorghe Membranes (Basel) Article Liquid membranes usually have three main constructive variants: bulk liquid membranes (BLM), supported liquid membranes (SLM) and emulsion liquid membranes (ELM). Designing hybrid variants is very topical, with the main purpose of increasing the flow of substance through the membrane but also of improving the selectivity. This paper presents the operational limits of some kind of hybrid membrane constituted as a bulk liquid membrane (BLM), but which works by dispersing the aqueous source (SP) and receiving (RP) phases, with the membrane itself being a dispersion of nanoparticles in an organic solvent (NP–OSM). The approached operational parameters were the volume of phases of the hybrid membrane system, the thickness of the liquid membrane, the working temperature, the flow of aqueous phases, the droplet size of the aqueous phases dispersed across the membrane, the nature and concentration of nanoparticles in the membrane, the pH difference between the aqueous phases, the nature of the organic solvent, the salt concentration in the aqueous phases and the nature of transported chemical species. For this study, silver ion (SI) and p-nitrophenol (PNP) were chosen as transportable chemical species, the n-aliphatic alcohols (C(6)…C(12)) as membrane organic solvents, 10–undecenoic acid (UDAc) and 10-undecylenic alcohol (UDAl) as carriers and magnetic iron oxides as nanoparticles dispersed in the membrane phase. Under the experimentally established operating conditions, separation efficiencies of over 90% were obtained for both ionic and molecular chemical species (silver ions and p-nitrophenol). The results showed the possibility of increasing the flow of transported chemical species by almost 10 times for the silver ion and approximately 100 times for p-nitrophenol, through the appropriate choice of operational parameters, but they also exposed their limits in relation to the stability of the membrane system. MDPI 2022-02-05 /pmc/articles/PMC8877906/ /pubmed/35207110 http://dx.doi.org/10.3390/membranes12020190 Text en © 2022 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
Ferencz (Dinu), Andreea
Grosu, Alexandra Raluca
Al-Ani, Hussam Nadum Abdalraheem
Nechifor, Aurelia Cristina
Tanczos, Szidonia-Katalin
Albu, Paul Constantin
Crăciun, Mihaela Emanuela
Ioan, Mihail-Răzvan
Grosu, Vlad-Alexandru
Nechifor, Gheorghe
Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title_full Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title_fullStr Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title_full_unstemmed Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title_short Operational Limits of the Bulk Hybrid Liquid Membranes Based on Dispersion Systems
title_sort operational limits of the bulk hybrid liquid membranes based on dispersion systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8877906/
https://www.ncbi.nlm.nih.gov/pubmed/35207110
http://dx.doi.org/10.3390/membranes12020190
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