Universiti Teknologi Malaysia Institutional Repository

A novel interfacial polymerization approach towards synthesis of graphene oxide-incorporated thin film nanocomposite membrane with improved surface properties

Lai, G. S. and Lau, W. J. and Goh, P. S. and Tan, Y. H. and Ng, B. C. and Ismail, A. F. (2019) A novel interfacial polymerization approach towards synthesis of graphene oxide-incorporated thin film nanocomposite membrane with improved surface properties. Arabian Journal of Chemistry, 12 (1). pp. 75-87. ISSN 1878-5352

[img]
Preview
PDF
2MB

Official URL: https://www.scopus.com/inward/record.uri?eid=2-s2....

Abstract

The conventional interfacial polymerization (IP) technique that requires a rubber roller in removing amine aqueous solution is likely to cause uneven distribution of nanomaterials on microporous substrate during thin film nanocomposite (TFN) membrane fabrication. A novel IP technique was developed in this work to pre-coat the substrate with graphene oxide (GO) nanosheets followed by vacuum filtration of amine aqueous solution through the substrate before initiating polyamide cross-linking process. This novel technique was also employed to fabricate a composite membrane that contained no nanomaterials. The results showed that the GO-incorporated TFN membrane exhibited 71.7% and 129.4% higher pure water flux compared to the composite membranes without GO incorporation that were synthesized using conventional and filtration IP technique, respectively. The water enhancement of the TFN membrane could be attributed to the existence of hydrophilic GO that was distributed evenly throughout the substrate surface coupled with the formation of porous selective layer that reduced water transport resistance. Besides exhibiting promising rejection against divalent ions, the newly developed TFN membrane also showed significantly lower water flux deterioration in filtrating bovine serum albumin and Reactive Black 5 solution. The enhanced membrane antifouling resistance was mainly due to the improved membrane surface properties that minimize deposition and adsorption of foulants on the TFN membrane surface.

Item Type:Article
Uncontrolled Keywords:Antifouling, Salt rejection, Thin film nanocomposite, Vacuum filtration, Water permeability
Subjects:T Technology > TP Chemical technology
Divisions:Chemical Engineering
ID Code:77224
Deposited By: Fazli Masari
Deposited On:31 May 2018 09:53
Last Modified:26 Jan 2021 01:01

Repository Staff Only: item control page