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Fabrication and characterization of the chlorine-tolerant disulfonated poly(arylene ether sulfone)/hyperbranched aromatic polyamide-grafted silica composite reverse osmosis membrane

Authors
Park, Si YoungKim, Sang GonChun, Jeong HwanChun, Byung-HeeKim, Sung Hyun
Issue Date
4월-2012
Publisher
DESALINATION PUBL
Keywords
HBP-g-silica; aPES; Chlorine resistance; Reverse osmosis membrane
Citation
DESALINATION AND WATER TREATMENT, v.43, no.1-3, pp.221 - 229
Indexed
SCIE
SCOPUS
Journal Title
DESALINATION AND WATER TREATMENT
Volume
43
Number
1-3
Start Page
221
End Page
229
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/108867
DOI
10.1080/19443994.2012.672175
ISSN
1944-3994
Abstract
In this study, hyperbranched aromatic polyamide-grafted silica (HBP-g-silica) and disulfonated 4,4-bis(3-aminophenoxy)phenyl sulfone (aPES) composite membrane was prepared to enhance the chlorination resistance of reverse osmosis (RO) membrane for desalination process. As the commercial polyamide (PA) RO membrane is very weak against free chlorine in desalination process, inorganic nanoparticle and new membrane material were introduced to RO membrane's active layer. The HBP-g-silica which includes lots of PA chains on the surface of silica and the new material aPES for RO membrane were characterized by H-1-NMR and Fourier transform infrared spectroscopy (FT-IR). The surface morphology of synthesized RO membrane was characterized by scanning electron microscope, and the performance, salt rejection, and water flux were evaluated before and after chlorination test. After the chlorination test, salt rejection was decreased by 36.2% and water permeation was increased only by 5.6% compared to the performance before chlorination measurement. The HBP-g-silica loading significantly modified the three-dimensional polyamide network structures and contributed to high performance by the chain stiffness of the copolymer with high degree of cross-linking. Therefore, the HBP-g-silica that protects PA structure from degradation enhances chlorine resistance in RO membrane.
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