TY - JOUR
T1 - High-performance nanofiltration membrane structured with enhanced stripe nano-morphology
AU - Shang, Wentao
AU - Sun, Feiyun
AU - Jia, Wei
AU - Guo, Jiaxin
AU - Yin, Shengming
AU - Wong, Pak Wai
AU - An, Alicia Kyoungjin
N1 - Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2020/4/15
Y1 - 2020/4/15
N2 - Increasing the roughness of polyamide surface is recognized as an effective way to enhance their water permeability, however, this method also increases the fouling risk of the membranes. In this study, we present a type of enhanced nanostructured nanofiltration (E-NF) membrane, which was created by the simple addition of sodium bicarbonate during interfacial polymerization on a porous substrate. Water flux of the enhanced nanostructure NF membrane (E-NF) was nearly triple that of the control NF membrane (C–NF), while salt rejection was maintained at a high level. More importantly, the E-NF exhibited less fouling than the C–NF and a stripe nanostructure NF membrane (S–NF). This improved fouling resistance was a result of the enhanced ridge-and-valley nanostructure, which experienced reduced fouling coverage, as evidenced by non-destructive optical coherence tomography (OCT). Our results demonstrate the importance of surface nano-morphologies for improving membrane performance and provide new insight into methods which can be used to enhance the anti-fouling ability of nanofiltration membranes in applications such as water and wastewater treatment.
AB - Increasing the roughness of polyamide surface is recognized as an effective way to enhance their water permeability, however, this method also increases the fouling risk of the membranes. In this study, we present a type of enhanced nanostructured nanofiltration (E-NF) membrane, which was created by the simple addition of sodium bicarbonate during interfacial polymerization on a porous substrate. Water flux of the enhanced nanostructure NF membrane (E-NF) was nearly triple that of the control NF membrane (C–NF), while salt rejection was maintained at a high level. More importantly, the E-NF exhibited less fouling than the C–NF and a stripe nanostructure NF membrane (S–NF). This improved fouling resistance was a result of the enhanced ridge-and-valley nanostructure, which experienced reduced fouling coverage, as evidenced by non-destructive optical coherence tomography (OCT). Our results demonstrate the importance of surface nano-morphologies for improving membrane performance and provide new insight into methods which can be used to enhance the anti-fouling ability of nanofiltration membranes in applications such as water and wastewater treatment.
KW - 3D OCT
KW - Membrane fouling
KW - Nano-morphologies
KW - Nanofiltration membrane
UR - https://www.scopus.com/pages/publications/85078500530
U2 - 10.1016/j.memsci.2020.117852
DO - 10.1016/j.memsci.2020.117852
M3 - 文章
AN - SCOPUS:85078500530
SN - 0376-7388
VL - 600
JO - Journal of Membrane Science
JF - Journal of Membrane Science
M1 - 117852
ER -