Zhengzhong Zhou
National University of Singapore
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Featured researches published by Zhengzhong Zhou.
Scientific Reports | 2016
Qing Liu; Jingguo Li; Zhengzhong Zhou; Jianping Xie; Jim Yang Lee
Internal concentration polarization (ICP) is a major issue in forward osmosis (FO) as it can significantly reduce the water flux in FO operations. It is known that a hydrophilic substrate and a smaller membrane structure parameter (S) are effective against ICP. This paper reports the development of a thin film composite (TFC) FO membrane with a hydrophilic mineral (CaCO3)-coated polyethersulfone (PES)-based substrate. The CaCO3 coating was applied continuously and uniformly on the membrane pore surfaces throughout the TFC substrate. Due to the intrinsic hydrophilicity of the CaCO3 coating, the substrate hydrophilicity was significantly increased and the membrane S parameter was reduced to as low as the current best of cellulose-based membranes but without the mechanical fragility of the latter. As a result, the ICP of the TFC-FO membrane could be significantly reduced to yield a remarkable increase in water flux without the loss of membrane selectivity.
Environmental Science & Technology | 2016
Lin Luo; Zhengzhong Zhou; Tai-Shung Chung; Martin Weber; Claudia Staudt; Christian Maletzko
Boron removal is one of the great challenges in modern wastewater treatment, owing to the unique small size and fast diffusion rate of neutral boric acid molecules. As forward osmosis (FO) membranes with a single selective layer are insufficient to reject boron, double-skinned FO membranes with boron rejection up to 83.9% were specially designed for boron permeation studies. The superior boron rejection properties of double-skinned FO membranes were demonstrated by theoretical calculations, and verified by experiments. The double-skinned FO membrane was fabricated using a sulfonated polyphenylenesulfone (sPPSU) polymer as the hydrophilic substrate and polyamide as the selective layer material via interfacial polymerization on top and bottom surfaces. A strong agreement between experimental data and modeling results validates the membrane design and confirms the success of model prediction. The effects of key parameters on boron rejection, such as boron permeability of both selective layers and structure parameter, were also investigated in-depth with the mathematical modeling. This study may provide insights not only for boron removal from wastewater, but also open up the design of next generation FO membranes to eliminate low-rejection molecules in wider applications.
Chemical Engineering Journal | 2014
Zhengzhong Zhou; Jim Yang Lee; Tai-Shung Chung
Journal of Membrane Science | 2009
Zhengzhong Zhou; Youchang Xiao; T. Alan Hatton; Tai-Shung Chung
ACS Sustainable Chemistry & Engineering | 2015
Qing Liu; Zhengzhong Zhou; Guanglei Qiu; Jingguo Li; Jianping Xie; Jim Yang Lee
Journal of Membrane Science | 2016
Zhengzhong Zhou; Jim Yang Lee
Journal of Membrane Science | 2012
Zhengzhong Zhou; Jiu-Hua Cheng; Tai-Shung Chung; T. Alan Hatton
Aiche Journal | 2011
Zhengzhong Zhou; Youchang Xiao; T. Alan Hatton; Tai-Shung Chung
Environmental Science & Technology | 2016
Qing Liu; Guanglei Qiu; Zhengzhong Zhou; Jingguo Li; Gary L. Amy; Jianping Xie; Jim Yang Lee
Chemical Engineering Journal | 2011
Zhengzhong Zhou; Jiu-Hua Cheng; Tai-Shung Chung; T. Alan Hatton; Masahiro Toriida; Katsunori Nishiura; Shoji Tamai