TY - JOUR
T1 - Macro-corrugated and nano-patterned hierarchically structured superomniphobic membrane for treatment of low surface tension oily wastewater by membrane distillation
AU - Kharraz, Jehad A.
AU - Farid, Muhammad Usman
AU - Khanzada, Noman Khalid
AU - Deka, Bhaskar Jyoti
AU - Arafat, Hassan A.
AU - An, Alicia Kyoungjin
N1 - Funding Information:
This work was supported by the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No. 11207717 ) and Innovation and Technology Commission through Innovation and Technology Fund (Project No. ITS/206/18FX ). The authors would like to thank Ms. Elfa Peng (Prof. Chuyang Tang’s group at the University of Hong Kong) for her help with membranes zeta potential measurements, Ms. Huimin Wang (Prof. Yau Wai Denis Yu’s group at City University of Hong Kong) for her help with zeta potential measurements of SiNPs, Dr. Mengnan Jiang (Prof. Zuankai Wang’s group at City University of Hong Kong) for his help with the high-speed camera videos.
Funding Information:
This work was supported by the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No.11207717) and Innovation and Technology Commission through Innovation and Technology Fund (Project No. ITS/206/18FX). The authors would like to thank Ms. Elfa Peng (Prof. Chuyang Tang's group at the University of Hong Kong) for her help with membranes zeta potential measurements, Ms. Huimin Wang (Prof. Yau Wai Denis Yu's group at City University of Hong Kong) for her help with zeta potential measurements of SiNPs, Dr. Mengnan Jiang (Prof. Zuankai Wang's group at City University of Hong Kong) for his help with the high-speed camera videos.
Publisher Copyright:
© 2020 Elsevier Ltd
PY - 2020/5/1
Y1 - 2020/5/1
N2 - A hierarchically assembled superomniphobic membrane with three levels of reentrant structure was designed and fabricated to enable effective treatment of low surface tension, hypersaline oily wastewaters using direct contact membrane distillation (DCMD). The overall structure is a combination of macro corrugations obtained by surface imprinting, with the micro spherulites morphology achieved through the applied phase inversion method and nano patterns obtained by fluorinated Silica nanoparticles (SiNPs) coating. This resulted in a superomniphobic membrane surface with remarkable anti-wetting properties repelling both high surface tension water and low surface tension oils. Measurements of contact angle (CA) with DI water, an anionic surfactant, oil, and ethanol demonstrated a robust wetting resistance against low surface tension liquids showing both superhydrophobicity and superoleophobicity. CA values of 160.8 ± 2.3° and 154.3 ± 1.9° for water and oil were obtained, respectively. Calculations revealed a high liquid-vapor interface for the fabricated membrane with more than 89% of the water droplet contact area being with air pockets entrapped between adjacent SiNPs and only 11% come into contact with the solid membrane surface. Moreover, the high liquid-vapor interface imparts the membrane with high liquid repellency, self-cleaning and slippery effects, characterized by a minimum droplet-membrane interaction and complete water droplet bouncing on the surface within only 18 ms. When tested in DCMD with synthetic hypersaline oily wastewaters, the fabricated superomniphobic membrane demonstrated stable, non-wetting MD operation over 24 h, even at high concentrations of low surface tension 1.0 mM Sodium dodecyl sulfate and 400 ppm oil, potentially offering a sustainable option for treatment of low surface tension oily industrial wastewater.
AB - A hierarchically assembled superomniphobic membrane with three levels of reentrant structure was designed and fabricated to enable effective treatment of low surface tension, hypersaline oily wastewaters using direct contact membrane distillation (DCMD). The overall structure is a combination of macro corrugations obtained by surface imprinting, with the micro spherulites morphology achieved through the applied phase inversion method and nano patterns obtained by fluorinated Silica nanoparticles (SiNPs) coating. This resulted in a superomniphobic membrane surface with remarkable anti-wetting properties repelling both high surface tension water and low surface tension oils. Measurements of contact angle (CA) with DI water, an anionic surfactant, oil, and ethanol demonstrated a robust wetting resistance against low surface tension liquids showing both superhydrophobicity and superoleophobicity. CA values of 160.8 ± 2.3° and 154.3 ± 1.9° for water and oil were obtained, respectively. Calculations revealed a high liquid-vapor interface for the fabricated membrane with more than 89% of the water droplet contact area being with air pockets entrapped between adjacent SiNPs and only 11% come into contact with the solid membrane surface. Moreover, the high liquid-vapor interface imparts the membrane with high liquid repellency, self-cleaning and slippery effects, characterized by a minimum droplet-membrane interaction and complete water droplet bouncing on the surface within only 18 ms. When tested in DCMD with synthetic hypersaline oily wastewaters, the fabricated superomniphobic membrane demonstrated stable, non-wetting MD operation over 24 h, even at high concentrations of low surface tension 1.0 mM Sodium dodecyl sulfate and 400 ppm oil, potentially offering a sustainable option for treatment of low surface tension oily industrial wastewater.
KW - Micro patterns
KW - Oily wastewater
KW - Re-entrant structure
KW - Self-cleaning
KW - Silica nanoparticles
KW - Water repellent
UR - http://www.scopus.com/inward/record.url?scp=85079606532&partnerID=8YFLogxK
U2 - 10.1016/j.watres.2020.115600
DO - 10.1016/j.watres.2020.115600
M3 - Article
C2 - 32088385
AN - SCOPUS:85079606532
SN - 0043-1354
VL - 174
JO - Water Research
JF - Water Research
M1 - 115600
ER -