Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane

Membrane separation technology has been widely examined for the treatment of oily wastewater owing to its numerous advantages, including high efficiency, energy saving, compact structure, and ease of operation. However, the overall performance of membrane separation highly depends on the membrane pr...

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Published in:Materials Today: Proceedings
Main Author: Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
Format: Article
Language:English
Published: Elsevier Ltd 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85148368771&doi=10.1016%2fj.matpr.2023.02.026&partnerID=40&md5=9b41398348b4fbf073836f1070948c12
id 2-s2.0-85148368771
spelling 2-s2.0-85148368771
Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
2023
Materials Today: Proceedings


10.1016/j.matpr.2023.02.026
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85148368771&doi=10.1016%2fj.matpr.2023.02.026&partnerID=40&md5=9b41398348b4fbf073836f1070948c12
Membrane separation technology has been widely examined for the treatment of oily wastewater owing to its numerous advantages, including high efficiency, energy saving, compact structure, and ease of operation. However, the overall performance of membrane separation highly depends on the membrane properties such as hydrophilicity and morphology structure. Nanoparticles (NPs) have been widely used to increase membrane hydrophilicity and fouling resistance. In this work, silica derived from granite dust (GD) via the sol–gel method was hydrothermally treated with molybdenum disulfide (MoS2) and used for the fabrication of MoS2-silica-PES mixed matrix membranes (MMMs). The synthesis of MoS2-silica composite was first confirmed via XRD analysis. Then, 1.0 wt% of MoS2-silica was blended into the PES casting solution, and the flat sheet membrane was cast by controlling the thickness of about 100 μm. The MoS2-silica-PES MMMs were then subjected to chemical, hydrophilicity and surface morphology studies. It was found that the addition of silica into MoS2 leads to a notable improvement in hydrophilicity and water flux as compared to bare PES and MoS2-PES membranes. The performance of MoS2-silica-PES membrane was then evaluated for oil–water separation using 1000 ppm oil concentrations at 1 bar and room temperature. The membrane was first compacted for 2 h at 2 bar before the oil–water separation test to maintain a stable flux. It was found that there was a substantial increase in the oil–water flux of the composite membranes (from 3.25 LMH to 41.68 LMH) when silica was added. This was due to the enhancement in membrane properties and morphology structure. Generally, the oil rejection of the MoS2-silica-PES MMMs fabricated in this work was maintained above 95 %. This study indicates that the fabricated MoS2-silica-PES MMMs have excellent potential for commercial applications. Using silica-derived granite dust offers an opportunity to lower the cost of the membrane. © 2023
Elsevier Ltd
22147853
English
Article

author Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
spellingShingle Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
author_facet Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
author_sort Abdul Razak N.A.; Othman N.H.; Fuzil N.S.; Mat Shayuti M.S.; Jumahat A.; Sapiai N.; Lau W.J.; Ismail A.F.
title Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
title_short Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
title_full Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
title_fullStr Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
title_full_unstemmed Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
title_sort Synergistic effects of silica derived granite dust and MoS2 on oil-water separation performances of mixed matrix PES membrane
publishDate 2023
container_title Materials Today: Proceedings
container_volume
container_issue
doi_str_mv 10.1016/j.matpr.2023.02.026
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85148368771&doi=10.1016%2fj.matpr.2023.02.026&partnerID=40&md5=9b41398348b4fbf073836f1070948c12
description Membrane separation technology has been widely examined for the treatment of oily wastewater owing to its numerous advantages, including high efficiency, energy saving, compact structure, and ease of operation. However, the overall performance of membrane separation highly depends on the membrane properties such as hydrophilicity and morphology structure. Nanoparticles (NPs) have been widely used to increase membrane hydrophilicity and fouling resistance. In this work, silica derived from granite dust (GD) via the sol–gel method was hydrothermally treated with molybdenum disulfide (MoS2) and used for the fabrication of MoS2-silica-PES mixed matrix membranes (MMMs). The synthesis of MoS2-silica composite was first confirmed via XRD analysis. Then, 1.0 wt% of MoS2-silica was blended into the PES casting solution, and the flat sheet membrane was cast by controlling the thickness of about 100 μm. The MoS2-silica-PES MMMs were then subjected to chemical, hydrophilicity and surface morphology studies. It was found that the addition of silica into MoS2 leads to a notable improvement in hydrophilicity and water flux as compared to bare PES and MoS2-PES membranes. The performance of MoS2-silica-PES membrane was then evaluated for oil–water separation using 1000 ppm oil concentrations at 1 bar and room temperature. The membrane was first compacted for 2 h at 2 bar before the oil–water separation test to maintain a stable flux. It was found that there was a substantial increase in the oil–water flux of the composite membranes (from 3.25 LMH to 41.68 LMH) when silica was added. This was due to the enhancement in membrane properties and morphology structure. Generally, the oil rejection of the MoS2-silica-PES MMMs fabricated in this work was maintained above 95 %. This study indicates that the fabricated MoS2-silica-PES MMMs have excellent potential for commercial applications. Using silica-derived granite dust offers an opportunity to lower the cost of the membrane. © 2023
publisher Elsevier Ltd
issn 22147853
language English
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