Next-generation membranes for verapamil removal: Graphene oxide quantum dot-modified polyethersulfone membranes
The presence of verapamil in water sources has gained attention due to its potential risks to ecosystems and human health. Because of its great separation performance and simplicity of integration into existing treatment processes, membrane filtration could be a viable alternative. Polyethersulfone...
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Published in | Colloids and surfaces. A, Physicochemical and engineering aspects Vol. 697; p. 134332 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
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Elsevier B.V
20.09.2024
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Abstract | The presence of verapamil in water sources has gained attention due to its potential risks to ecosystems and human health. Because of its great separation performance and simplicity of integration into existing treatment processes, membrane filtration could be a viable alternative. Polyethersulfone (PES) membrane is usually employed for filtration processes due to its good mechanical and thermal stability. However, pristine PES membrane exhibits low flux and lower fouling properties due to its poor antibacterial properties. Thus, the phase inversion approach was used in the current study to develop graphene oxide quantum dots (GOQDs)-modified PES ultrafiltration (UF) membranes with varying quantities of GOQDs loading (0.01–0.07 wt%). With 0.03 wt% GOQDs, the PES composite membrane exhibited a water flux of 75.23 ±10.43 L/m2 h with a verapamil retention capability of 80.36%. All the modified PES membranes containing GOQDs exhibited the formation of inhibition zones, with PES-0.07 membranes (21.00 mm) showing more pronounced zones. The incorporation of GOQDs proved to be a promising and sustainable approach for modifying PES membranes, enhancing their flux, rejection performance, and antibacterial properties, which could be beneficial in removing pharmaceutical compounds from aqueous solution.
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•PES-GOQDs membranes were successfully fabricated using a phase inversion approach.•The prepared membrane can effectively separate verapamil foulant from aqueous solutions.•The GOQDs improve the membrane's hydrophilicity, porosity, and permeability.•The PES-GOQDs membrane displayed excellent antibacterial properties. |
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AbstractList | The presence of verapamil in water sources has gained attention due to its potential risks to ecosystems and human health. Because of its great separation performance and simplicity of integration into existing treatment processes, membrane filtration could be a viable alternative. Polyethersulfone (PES) membrane is usually employed for filtration processes due to its good mechanical and thermal stability. However, pristine PES membrane exhibits low flux and lower fouling properties due to its poor antibacterial properties. Thus, the phase inversion approach was used in the current study to develop graphene oxide quantum dots (GOQDs)-modified PES ultrafiltration (UF) membranes with varying quantities of GOQDs loading (0.01–0.07 wt%). With 0.03 wt% GOQDs, the PES composite membrane exhibited a water flux of 75.23 ±10.43 L/m2 h with a verapamil retention capability of 80.36%. All the modified PES membranes containing GOQDs exhibited the formation of inhibition zones, with PES-0.07 membranes (21.00 mm) showing more pronounced zones. The incorporation of GOQDs proved to be a promising and sustainable approach for modifying PES membranes, enhancing their flux, rejection performance, and antibacterial properties, which could be beneficial in removing pharmaceutical compounds from aqueous solution.
[Display omitted]
•PES-GOQDs membranes were successfully fabricated using a phase inversion approach.•The prepared membrane can effectively separate verapamil foulant from aqueous solutions.•The GOQDs improve the membrane's hydrophilicity, porosity, and permeability.•The PES-GOQDs membrane displayed excellent antibacterial properties. |
ArticleNumber | 134332 |
Author | Mahmoudi, Ebrahim Mah, Shee Keat Ng, Ching Yin Lim, Ying Pei Chiang, Amelia Kar Mun Ng, Law Yong |
Author_xml | – sequence: 1 givenname: Amelia Kar Mun surname: Chiang fullname: Chiang, Amelia Kar Mun organization: Department of Chemical Engineering, Lee Kong Chian Faculty of Engineering and Science, Universiti Tunku Abdul Rahman, Jalan Sungai Long, Bandar Sungai Long, Kajang, Selangor 43000, Malaysia – sequence: 2 givenname: Law Yong orcidid: 0000-0002-6868-4977 surname: Ng fullname: Ng, Law Yong email: lyng@utar.edu.my organization: Department of Chemical Engineering, Lee Kong Chian Faculty of Engineering and Science, Universiti Tunku Abdul Rahman, Jalan Sungai Long, Bandar Sungai Long, Kajang, Selangor 43000, Malaysia – sequence: 3 givenname: Ching Yin surname: Ng fullname: Ng, Ching Yin organization: Department of Chemical Engineering, Faculty of Engineering, Technology and Built Environment, UCSI University (Kuala Lumpur Campus), No. 1, Jalan Menara Gading, UCSI Heights (Taman Connaught), Cheras, Kuala Lumpur 56000, Malaysia – sequence: 4 givenname: Ebrahim surname: Mahmoudi fullname: Mahmoudi, Ebrahim organization: Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, Bangi, Selangor Darul Ehsan 43600, Malaysia – sequence: 5 givenname: Ying Pei surname: Lim fullname: Lim, Ying Pei organization: School of Chemical Engineering, College of Engineering, Universiti Teknologi MARA, Shah Alam, Selangor 40450, Malaysia – sequence: 6 givenname: Shee Keat surname: Mah fullname: Mah, Shee Keat organization: Department of Chemical Engineering, Lee Kong Chian Faculty of Engineering and Science, Universiti Tunku Abdul Rahman, Jalan Sungai Long, Bandar Sungai Long, Kajang, Selangor 43000, Malaysia |
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Keywords | Verapamil Membrane Quantum dot Graphene oxide Antibacterial |
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