Javascript must be enabled to continue!
Synthesis and Characterisation of Polyvinylpyrrolidone Based Graphene Oxide Composite Membrane
View through CrossRef
Numerous industries produce oily wastewater, significantly impacting human health and the environment. Effective treatment technologies are essential to manage and mitigate the impacts of oily wastewater discharge. Forward osmosis (FO) process is a promising membrane process for oily wastewater treatment. It is less prone to fouling and require lower energy inputs compared to traditional pressure-driven processes. Polymeric membranes have shown promising applications in FO process. However, their intrinsic hydrophobicity leads to severe fouling, which significantly deteriorates their separation performance. To overcome these challenges, surface modifications are essential for improving the performance of polymeric membranes. This work focuses on the development of a thin film nanocomposite (TFN) membrane that combines polysulfone (PSf) and polyvinylpyrrolidone (PVP) with graphene oxide (GO) for the purification of oily wastewater. The characterisation of nanoparticles (NPs) is undertaken by using zeta potential (ZP) and attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR). ZP results of nanoparticles, show that the PVP-modified GO NPs has higher value of -41 mV than GO NPs, confirming greater dispersibility. The disappearance of the peak at 1732 cm−1 in the ATR-FTIR spectra of PVP-GO nanoparticles, compared to GO, indicates that some of the oxygen-containing functional groups of GO have been modified during the preparation of PVP-GO, and new chemical bonds have formed. The resultant membrane properties are characterised using several analytical tools, including ATR-FTIR, field emission scanning electron microscopy (FESEM), and atomic force microscopy (AFM). The peak at around 3382 cm-1 and the increasing intensity at 1758 cm-1 in the ATR-FTIR spectra confirm the presence of GO and PVP-GO NPs on the surface of TFC by confirming carbonyl and hydroxyl containing groups. The PA layer thickness was measured using ImageJ software in FESEM results, which shows 317 nm, 240 nm and 137 nm thicknesses for TFC, TFN and TFN-1 FO membranes, respectively. Moreover, the AFM results confirm the minimum roughness of TFN-1 compared to TFC and TFN. This study demonstrated that the use of PVP-GO nanoparticles to modify FO membranes significantly enhances their performance. The improved dispersibility of these nanoparticles and the resulting augmented hydrophilicity contribute to higher water flux and better fouling resistance.
Akademia Baru Publishing
Title: Synthesis and Characterisation of Polyvinylpyrrolidone Based Graphene Oxide Composite Membrane
Description:
Numerous industries produce oily wastewater, significantly impacting human health and the environment.
Effective treatment technologies are essential to manage and mitigate the impacts of oily wastewater discharge.
Forward osmosis (FO) process is a promising membrane process for oily wastewater treatment.
It is less prone to fouling and require lower energy inputs compared to traditional pressure-driven processes.
Polymeric membranes have shown promising applications in FO process.
However, their intrinsic hydrophobicity leads to severe fouling, which significantly deteriorates their separation performance.
To overcome these challenges, surface modifications are essential for improving the performance of polymeric membranes.
This work focuses on the development of a thin film nanocomposite (TFN) membrane that combines polysulfone (PSf) and polyvinylpyrrolidone (PVP) with graphene oxide (GO) for the purification of oily wastewater.
The characterisation of nanoparticles (NPs) is undertaken by using zeta potential (ZP) and attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR).
ZP results of nanoparticles, show that the PVP-modified GO NPs has higher value of -41 mV than GO NPs, confirming greater dispersibility.
The disappearance of the peak at 1732 cm−1 in the ATR-FTIR spectra of PVP-GO nanoparticles, compared to GO, indicates that some of the oxygen-containing functional groups of GO have been modified during the preparation of PVP-GO, and new chemical bonds have formed.
The resultant membrane properties are characterised using several analytical tools, including ATR-FTIR, field emission scanning electron microscopy (FESEM), and atomic force microscopy (AFM).
The peak at around 3382 cm-1 and the increasing intensity at 1758 cm-1 in the ATR-FTIR spectra confirm the presence of GO and PVP-GO NPs on the surface of TFC by confirming carbonyl and hydroxyl containing groups.
The PA layer thickness was measured using ImageJ software in FESEM results, which shows 317 nm, 240 nm and 137 nm thicknesses for TFC, TFN and TFN-1 FO membranes, respectively.
Moreover, the AFM results confirm the minimum roughness of TFN-1 compared to TFC and TFN.
This study demonstrated that the use of PVP-GO nanoparticles to modify FO membranes significantly enhances their performance.
The improved dispersibility of these nanoparticles and the resulting augmented hydrophilicity contribute to higher water flux and better fouling resistance.
Related Results
Simulation of interaction behavior between dislocation and graphene during nanoindentation of graphene/aluminum matrix nanocomposites
Simulation of interaction behavior between dislocation and graphene during nanoindentation of graphene/aluminum matrix nanocomposites
Graphene has been thought to be an ideal reinforcement material for metal matrix composite due to its superior mechanical properties and unique two-dimensional geometry. However, t...
Preparation of Graphene Fibers
Preparation of Graphene Fibers
Graphene owns intriguing properties in electronic, thermal, and mechanic with unique two-dimension (2D) monolayer structure. The new member of carbon family has not only attracted ...
Synthesis of Fe3O4-Reduced Graphene Oxide Modified Tissue-Paper and Application in the Treatment of Methylene Blue
Synthesis of Fe3O4-Reduced Graphene Oxide Modified Tissue-Paper and Application in the Treatment of Methylene Blue
Graphene-based composites have received a great deal of attention in recent year because the presence of graphene can enhance the conductivity, strength of bulk materials and help ...
The influence of the oxidation method on the properties of reduced graphene oxide
The influence of the oxidation method on the properties of reduced graphene oxide
Derivatives of graphene have become important materials due to their excellent properties. Graphene oxide and reduced graphene oxide are especially interesting because they are pro...
CVD-Grown Graphene Modified with Aryl Groups by Electroreduction of Corresponding Diazonium Salts
CVD-Grown Graphene Modified with Aryl Groups by Electroreduction of Corresponding Diazonium Salts
Graphene has been widely studied material because of its interesting properties (for example large surface area, high conductivity, good mechanical, electronic, optical, thermal an...
The structure of thermally reduced graphene oxide
The structure of thermally reduced graphene oxide
The paper focused on the description of the reduced graphene oxide (rGO) structure. This material is obtained from a multistage production process. Each of these stages has a large...
Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
The influence of the type of graphite on the size of reduced graphene oxide
The influence of the type of graphite on the size of reduced graphene oxide
Reduced graphene oxide is a very attractive material for sensor applications. It exhibits high conductivity at room temperature and high specific surface area. Since it can be prod...

