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Title: Comparative impact of SiO2 and TiO2 nanofillers on the performance of thin‐film nanocomposite membranes
Abstract

Nanoparticle (NP) additions can substantially improve the performance of reverse osmosis and nanofiltration polyamide (PA) membranes. However, the relative impacts of leading additives are poorly understood. In this study, we compare the effects ofTiO2andSiO2NPs as nanofillers in PA membranes with respect to permeate flux and the rejection of organic matter (OM) and salts. Thin‐film nanocomposite (TFN) PA membranes were fabricated using similarly sizedTiO215 nm andSiO2(10 – 20 nm)NPs, introduced at four different NP concentrations (0.01, 0.05, 0.2, and 0.5% w/v). Compared with PA membranes fabricated without NPs, membranes fabricated with nanofillers improved membranes hydrophilicity, membrane porosity, and consequently the permeability. Permeability was increased by 24 and 58% with the addition ofTiO2andSiO2, respectively. Rejection performance and fouling behavior of the membranes were examined with salt (MgSO4andNaCl) and OM (humic acid [HA] and tannic acid [TA]). The addition ofTiO2andSiO2nanofillers to the PA membranes improved the permeability of these membranes and also increased the rejection ofMgSO4, especially for TiO2membranes. The addition ofTiO2andSiO2to the membranes exhibited a higher flux and lower flux decline ratio than the control membrane in OM solution filtration. TFN membranes' HA and TA rejections were at least 77 and 71%, respectively. The surface change properties of NPs appear to play a dominant role in determining their effects as nanofillers in the composite membrane matrix through a balance of changes produced in membrane pore size and membrane hydrophilicity.

 
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NSF-PAR ID:
10456966
Author(s) / Creator(s):
 ;  ;  ;  ;  
Publisher / Repository:
Wiley Blackwell (John Wiley & Sons)
Date Published:
Journal Name:
Journal of Applied Polymer Science
Volume:
137
Issue:
44
ISSN:
0021-8995
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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