Incorporation of Electrochemically Exfoliated Graphene Oxide and TiO2 into Polyvinylidene Fluoride-Based Nanofiltration Membrane for Dye Rejection

被引:0
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作者
A. B. Suriani
A. Muqoyyanah
M. H. D. Mohamed
R. Othman
I. I. Rohani
M. H. Yusoff
N. Mamat
M. N. Hashim
M. K. Azlan
P. Ahmad
H. H. Marwoto
M. D. Sulhadi
H. P. S. Abdul Kusuma
机构
[1] Universiti Pendidikan Sultan Idris,Nanotechnology Research Centre
[2] Universiti Pendidikan Sultan Idris,Department of Physics
[3] Universiti Pendidikan Sultan Idris,Department of Chemistry, Faculty of Science and Mathematics
[4] Universiti Teknologi Malaysia,Advanced Membrane Technology Research Centre (AMTEC)
[5] Universiti Kebangsaan Malaysia (UKM),Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment
[6] Universiti Teknologi MARA (UiTM),NANO
[7] Universiti Tun Hussein Onn Malaysia,ElecTronic Centre (NET), Faculty of Electrical Engineering
[8] Universitas Negeri Semarang (UNNES),Microelectronic and Nanotechnology
[9] Universitas Islam Negeri,Shamsuddin Research Centre (MiNT
[10] CNRS International NTU Thales Research Alliance (CINTRA),SRC), Faculty of Electrical and Electronic Engineering
[11] Research Techno Plaza,Materials Research Group, Thin Film Laboratory, Faculty of Mathematics and Natural Science
[12] Universiti Sains Malaysia,Physics Department, Faculty of Sciences and Technology
来源
Water, Air, & Soil Pollution | 2019年 / 230卷
关键词
Graphene oxide; Electrochemical exfoliation; Nanofiltration; Titanium dioxide; Phase inversion; Dye rejection;
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学科分类号
摘要
In this work, the novel direct synthesis method of dimethylacetamide-based graphene oxide (GO) was performed through electrochemical exfoliation assisted by commercially available single-tail sodium dodecyl sulphate (SDS) surfactant. Then, the synthesised GO (SDS–GO) was incorporated into polyvinylidene fluoride (PVDF) solution to produce a nanofiltration (NF) membrane through the phase immersion method. The addition of GO into the preparation of membrane solution alters the membrane morphology and improves the hydrophilicity. TiO2 was also used as an additive for the NF membrane fabrication to further increase the membrane hydrophilicity. The fabricated PVDF/SDS–GO/TiO2 and PVDF/SDS–GO NF membranes were compared with pure PVDF membrane. Then, the fabricated NF membranes were tested for methylene blue (MB) rejection with 10 ppm MB concentration. On the basis of the dead-end cell measurement operated at the pressure of 2 bar, the PVDF/SDS–GO/TiO2 presents high MB rejection (92.76%) and the highest dye flux (7.770 L/m2 h). This dye flux value was sevenfold higher than that of pure PVDF membrane (1.146 L/m2 h) which was due to the utilisation of both GO and TiO2 that improved the membrane hydrophilicity as indicated by the lowest contact angle (64.0 ± 0.11°). High porosity (57.46%) also resulted in the highest water permeability (4.187 L/m2 h bar) of the PVDF/SDS–GO/TiO2 NF membrane.
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