Cargando…

Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process

This study explored the use of a combination of hydrothermal and sol–gel methods to produce porous titanium dioxide (PTi) powder with a high specific surface area of 112.84 m(2)/g. The PTi powder was utilized as a filler in the fabrication of ultrafiltration nanocomposite membranes using polysulfone...

Descripción completa

Detalles Bibliográficos
Autores principales: Zahedipoor, Ahmadreza, Faramarzi, Mehdi, Mansourizadeh, Amir, Ghaedi, Abdolmohammad, Emadzadeh, Daryoush
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10302651/
https://www.ncbi.nlm.nih.gov/pubmed/37367781
http://dx.doi.org/10.3390/membranes13060577
_version_ 1785065093796462592
author Zahedipoor, Ahmadreza
Faramarzi, Mehdi
Mansourizadeh, Amir
Ghaedi, Abdolmohammad
Emadzadeh, Daryoush
author_facet Zahedipoor, Ahmadreza
Faramarzi, Mehdi
Mansourizadeh, Amir
Ghaedi, Abdolmohammad
Emadzadeh, Daryoush
author_sort Zahedipoor, Ahmadreza
collection PubMed
description This study explored the use of a combination of hydrothermal and sol–gel methods to produce porous titanium dioxide (PTi) powder with a high specific surface area of 112.84 m(2)/g. The PTi powder was utilized as a filler in the fabrication of ultrafiltration nanocomposite membranes using polysulfone (PSf) as the polymer. The synthesized nanoparticles and membranes were analyzed using various techniques, including BET, TEM, XRD, AFM, FESEM, FTIR, and contact angle measurements. The membrane’s performance and antifouling properties were also assessed using bovine serum albumin (BSA) as a simulated wastewater feed solution. Furthermore, the ultrafiltration membranes were tested in the forward osmosis (FO) system using a 0.6-weight-percent solution of poly (sodium 4-styrene sulfonate) as the osmosis solution to evaluate the osmosis membrane bioreactor (OsMBR) process. The results revealed that the incorporation of PTi nanoparticles into the polymer matrix enhanced the hydrophilicity and surface energy of the membrane, resulting in better performance. The optimized membrane containing 1% PTi displayed a water flux of 31.5 L/m(2)h, compared to the neat membrane water value of 13.7 L/m(2)h. The membrane also demonstrated excellent antifouling properties, with a flux recovery of 96%. These results highlight the potential of the PTi-infused membrane as a simulated osmosis membrane bioreactor (OsMBR) for wastewater treatment applications.
format Online
Article
Text
id pubmed-10302651
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-103026512023-06-29 Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process Zahedipoor, Ahmadreza Faramarzi, Mehdi Mansourizadeh, Amir Ghaedi, Abdolmohammad Emadzadeh, Daryoush Membranes (Basel) Article This study explored the use of a combination of hydrothermal and sol–gel methods to produce porous titanium dioxide (PTi) powder with a high specific surface area of 112.84 m(2)/g. The PTi powder was utilized as a filler in the fabrication of ultrafiltration nanocomposite membranes using polysulfone (PSf) as the polymer. The synthesized nanoparticles and membranes were analyzed using various techniques, including BET, TEM, XRD, AFM, FESEM, FTIR, and contact angle measurements. The membrane’s performance and antifouling properties were also assessed using bovine serum albumin (BSA) as a simulated wastewater feed solution. Furthermore, the ultrafiltration membranes were tested in the forward osmosis (FO) system using a 0.6-weight-percent solution of poly (sodium 4-styrene sulfonate) as the osmosis solution to evaluate the osmosis membrane bioreactor (OsMBR) process. The results revealed that the incorporation of PTi nanoparticles into the polymer matrix enhanced the hydrophilicity and surface energy of the membrane, resulting in better performance. The optimized membrane containing 1% PTi displayed a water flux of 31.5 L/m(2)h, compared to the neat membrane water value of 13.7 L/m(2)h. The membrane also demonstrated excellent antifouling properties, with a flux recovery of 96%. These results highlight the potential of the PTi-infused membrane as a simulated osmosis membrane bioreactor (OsMBR) for wastewater treatment applications. MDPI 2023-06-01 /pmc/articles/PMC10302651/ /pubmed/37367781 http://dx.doi.org/10.3390/membranes13060577 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
Zahedipoor, Ahmadreza
Faramarzi, Mehdi
Mansourizadeh, Amir
Ghaedi, Abdolmohammad
Emadzadeh, Daryoush
Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title_full Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title_fullStr Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title_full_unstemmed Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title_short Integration of Porous Nanomaterial-Infused Membrane in UF/FO Membrane Hybrid for Simulated Osmosis Membrane Bioreactor (OsMBR) Process
title_sort integration of porous nanomaterial-infused membrane in uf/fo membrane hybrid for simulated osmosis membrane bioreactor (osmbr) process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10302651/
https://www.ncbi.nlm.nih.gov/pubmed/37367781
http://dx.doi.org/10.3390/membranes13060577
work_keys_str_mv AT zahedipoorahmadreza integrationofporousnanomaterialinfusedmembraneinuffomembranehybridforsimulatedosmosismembranebioreactorosmbrprocess
AT faramarzimehdi integrationofporousnanomaterialinfusedmembraneinuffomembranehybridforsimulatedosmosismembranebioreactorosmbrprocess
AT mansourizadehamir integrationofporousnanomaterialinfusedmembraneinuffomembranehybridforsimulatedosmosismembranebioreactorosmbrprocess
AT ghaediabdolmohammad integrationofporousnanomaterialinfusedmembraneinuffomembranehybridforsimulatedosmosismembranebioreactorosmbrprocess
AT emadzadehdaryoush integrationofporousnanomaterialinfusedmembraneinuffomembranehybridforsimulatedosmosismembranebioreactorosmbrprocess