Highly durable and sustainable heterogeneous fabric using in-and-out fluorinated urethane coating for elimination of bacteria and oil–water separation

To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily wastewater discharge, this study designed an in-and-out coating material for modifying the inner site and outer surface of porous activated...

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Published innpj clean water Vol. 5; no. 1; pp. 1 - 8
Main Authors Choi, Moonhyun, Park, Sohyeon, Choi, Woojin, Kim, Youna, Cho, Kyeong Min, Heo, Jiwoong, Kim, Min-Kun, Jung, Heesoo, Jin, Youngho, Lee, Sangmin, Hong, Jinkee
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 23.09.2022
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Abstract To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily wastewater discharge, this study designed an in-and-out coating material for modifying the inner site and outer surface of porous activated carbon fabric (ACF) using urethane reactions. To this end, fluorinated polyurethane (F-PU) coating materials were synthesized using perfluoroalkyl alcohol, ethylene glycol (EG), and isophorone diisocyanate (IPDI). Subsequently, the inner and outer surface of the ACF were coated with F-PU via the urethane reaction of the hydroxyl groups (–OH) of the surface of ACF and the isocyanates of F-PU. The successfully fabricated in-and-out F-PU-coated heterogeneous fabric exhibited excellent hydrophobic properties, anti-scratch performance, oil–water separation performance, and bacterial penetration blocking efficiency (>99% for gram negative and gram positive bacteria). Furthermore, the in-and-out-coated ACF exhibited high durability, and retained its bacterial penetration blocking performance after scratch tests.
AbstractList To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily wastewater discharge, this study designed an in-and-out coating material for modifying the inner site and outer surface of porous activated carbon fabric (ACF) using urethane reactions. To this end, fluorinated polyurethane (F-PU) coating materials were synthesized using perfluoroalkyl alcohol, ethylene glycol (EG), and isophorone diisocyanate (IPDI). Subsequently, the inner and outer surface of the ACF were coated with F-PU via the urethane reaction of the hydroxyl groups (–OH) of the surface of ACF and the isocyanates of F-PU. The successfully fabricated in-and-out F-PU-coated heterogeneous fabric exhibited excellent hydrophobic properties, anti-scratch performance, oil–water separation performance, and bacterial penetration blocking efficiency (>99% for gram negative and gram positive bacteria). Furthermore, the in-and-out-coated ACF exhibited high durability, and retained its bacterial penetration blocking performance after scratch tests.
Abstract To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily wastewater discharge, this study designed an in-and-out coating material for modifying the inner site and outer surface of porous activated carbon fabric (ACF) using urethane reactions. To this end, fluorinated polyurethane (F-PU) coating materials were synthesized using perfluoroalkyl alcohol, ethylene glycol (EG), and isophorone diisocyanate (IPDI). Subsequently, the inner and outer surface of the ACF were coated with F-PU via the urethane reaction of the hydroxyl groups (–OH) of the surface of ACF and the isocyanates of F-PU. The successfully fabricated in-and-out F-PU-coated heterogeneous fabric exhibited excellent hydrophobic properties, anti-scratch performance, oil–water separation performance, and bacterial penetration blocking efficiency (>99% for gram negative and gram positive bacteria). Furthermore, the in-and-out-coated ACF exhibited high durability, and retained its bacterial penetration blocking performance after scratch tests.
Abstract To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily wastewater discharge, this study designed an in-and-out coating material for modifying the inner site and outer surface of porous activated carbon fabric (ACF) using urethane reactions. To this end, fluorinated polyurethane (F-PU) coating materials were synthesized using perfluoroalkyl alcohol, ethylene glycol (EG), and isophorone diisocyanate (IPDI). Subsequently, the inner and outer surface of the ACF were coated with F-PU via the urethane reaction of the hydroxyl groups (–OH) of the surface of ACF and the isocyanates of F-PU. The successfully fabricated in-and-out F-PU-coated heterogeneous fabric exhibited excellent hydrophobic properties, anti-scratch performance, oil–water separation performance, and bacterial penetration blocking efficiency (>99% for gram negative and gram positive bacteria). Furthermore, the in-and-out-coated ACF exhibited high durability, and retained its bacterial penetration blocking performance after scratch tests.
ArticleNumber 48
Author Choi, Moonhyun
Kim, Min-Kun
Kim, Youna
Hong, Jinkee
Heo, Jiwoong
Lee, Sangmin
Choi, Woojin
Jin, Youngho
Park, Sohyeon
Cho, Kyeong Min
Jung, Heesoo
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Snippet To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of industrial oily...
Abstract To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of...
Abstract To address the poor oil–water separation efficiency and bactericidal properties of existing oil–water separation membranes for the treatment of...
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SubjectTerms 639/166/898
639/301/1023
Activated carbon
Aquatic Pollution
Bacteria
Carbon fibers
Chemical spills
Coating
Coatings
Diisocyanates
Durability
Earth and Environmental Science
Efficiency
Environment
Environmental impact
Ethylene glycol
Fabrics
Fluorination
Fourier transforms
Gram-negative bacteria
Gram-positive bacteria
Hydrogen bonds
Hydrophobicity
Hydroxyl groups
Isocyanates
Membranes
Morphology
Nanotechnology
Oil
Oil spills
Penetration
Perfluoroalkyl & polyfluoroalkyl substances
Polyurethane
Polyurethane resins
Protective coatings
Scratch tests
Separation
Waste Water Technology
Wastewater
Wastewater discharges
Water Industry/Water Technologies
Water Management
Water Pollution Control
Water Quality/Water Pollution
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Title Highly durable and sustainable heterogeneous fabric using in-and-out fluorinated urethane coating for elimination of bacteria and oil–water separation
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