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Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes

In this study, polyethersulfone (PES) ultrafiltration (UF) membranes were modified with GO, Ag, ZnO, Ag-GO and ZnO-GO nanoparticles to improve carbamazepine removal and fouling prevention by making membrane surfaces more hydrophilic. The fabricated membranes were characterized for surface and cross-...

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Autores principales: Mahlangu, Oranso Themba, Motsa, Mxolisi Machawe, Hai, Faisal Ibney, Mamba, Bhekie Brilliance
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456577/
https://www.ncbi.nlm.nih.gov/pubmed/37623805
http://dx.doi.org/10.3390/membranes13080744
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author Mahlangu, Oranso Themba
Motsa, Mxolisi Machawe
Hai, Faisal Ibney
Mamba, Bhekie Brilliance
author_facet Mahlangu, Oranso Themba
Motsa, Mxolisi Machawe
Hai, Faisal Ibney
Mamba, Bhekie Brilliance
author_sort Mahlangu, Oranso Themba
collection PubMed
description In this study, polyethersulfone (PES) ultrafiltration (UF) membranes were modified with GO, Ag, ZnO, Ag-GO and ZnO-GO nanoparticles to improve carbamazepine removal and fouling prevention by making membrane surfaces more hydrophilic. The fabricated membranes were characterized for surface and cross-sectional morphology, surface roughness and zeta potential, as well as hydrophilicity, functional groups, surface tension parameters and water permeability Thereafter, the membranes were evaluated for their efficiency in removing MgSO(4) and carbamazepine as well as antifouling properties. To understand the role of affinity interactions in rejection and fouling, membrane–solute adhesion energies ([Formula: see text]) were quantified based on the Lifshitz–van der Waals/acid–base method. Unlike previous studies, which have generalized fouling prevention to be due to improvements in hydrophilicity upon adding nanoparticles, this work further explored the role of surface tension components on rejection and fouling prevention. The addition of nanoparticles improved membrane hydrophilicity (77–62°), water permeability (11.9–17.7 Lm(−2) h(−1) bar(−1)), mechanical strength (3.46–4.11 N/mm(2)), carbamazepine rejection (30–85%) and fouling prevention (60–23% flux decline). Rejection and antifouling properties increased as [Formula: see text] became more repulsive (i.e., less negative). Membrane modification reduced irreversible fouling, and the fouled membranes were cleaned by flushing with water. Fouling related more to membrane electron donor components ([Formula: see text]), while the roles of electron acceptor ([Formula: see text]) and Lifshitz–van der Waals components ([Formula: see text]) were less important. This work provides more insights into the role of affinity interactions in rejection and fouling and how rejection and fouling mechanisms change with nanoparticle addition.
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spelling pubmed-104565772023-08-26 Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes Mahlangu, Oranso Themba Motsa, Mxolisi Machawe Hai, Faisal Ibney Mamba, Bhekie Brilliance Membranes (Basel) Article In this study, polyethersulfone (PES) ultrafiltration (UF) membranes were modified with GO, Ag, ZnO, Ag-GO and ZnO-GO nanoparticles to improve carbamazepine removal and fouling prevention by making membrane surfaces more hydrophilic. The fabricated membranes were characterized for surface and cross-sectional morphology, surface roughness and zeta potential, as well as hydrophilicity, functional groups, surface tension parameters and water permeability Thereafter, the membranes were evaluated for their efficiency in removing MgSO(4) and carbamazepine as well as antifouling properties. To understand the role of affinity interactions in rejection and fouling, membrane–solute adhesion energies ([Formula: see text]) were quantified based on the Lifshitz–van der Waals/acid–base method. Unlike previous studies, which have generalized fouling prevention to be due to improvements in hydrophilicity upon adding nanoparticles, this work further explored the role of surface tension components on rejection and fouling prevention. The addition of nanoparticles improved membrane hydrophilicity (77–62°), water permeability (11.9–17.7 Lm(−2) h(−1) bar(−1)), mechanical strength (3.46–4.11 N/mm(2)), carbamazepine rejection (30–85%) and fouling prevention (60–23% flux decline). Rejection and antifouling properties increased as [Formula: see text] became more repulsive (i.e., less negative). Membrane modification reduced irreversible fouling, and the fouled membranes were cleaned by flushing with water. Fouling related more to membrane electron donor components ([Formula: see text]), while the roles of electron acceptor ([Formula: see text]) and Lifshitz–van der Waals components ([Formula: see text]) were less important. This work provides more insights into the role of affinity interactions in rejection and fouling and how rejection and fouling mechanisms change with nanoparticle addition. MDPI 2023-08-21 /pmc/articles/PMC10456577/ /pubmed/37623805 http://dx.doi.org/10.3390/membranes13080744 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
Mahlangu, Oranso Themba
Motsa, Mxolisi Machawe
Hai, Faisal Ibney
Mamba, Bhekie Brilliance
Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title_full Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title_fullStr Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title_full_unstemmed Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title_short Role of Membrane–Solute Affinity Interactions in Carbamazepine Rejection and Resistance to Organic Fouling by Nano-Engineered UF/PES Membranes
title_sort role of membrane–solute affinity interactions in carbamazepine rejection and resistance to organic fouling by nano-engineered uf/pes membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456577/
https://www.ncbi.nlm.nih.gov/pubmed/37623805
http://dx.doi.org/10.3390/membranes13080744
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