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Scalable and switchable CO2-responsive membranes with high wettability for separation of various oil/water systems.


ABSTRACT: Smart membranes with responsive wettability show promise for controllably separating oil/water mixtures, including immiscible oil-water mixtures and surfactant-stabilized oil/water emulsions. However, the membranes are challenged by unsatisfactory external stimuli, inadequate wettability responsiveness, difficulty in scalability and poor self-cleaning performance. Here, we develop a capillary force-driven confinement self-assembling strategy to construct a scalable and stable CO2-responsive membrane for the smart separation of various oil/water systems. In this process, the CO2-responsive copolymer can homogeneously adhere to the membrane surface by manipulating the capillary force, generating a membrane with a large area up to 3600 cm2 and excellent switching wettability between high hydrophobicity/underwater superoleophilicity and superhydrophilicity/underwater superoleophobicity under CO2/N2 stimulation. The membrane can be applied to various oil/water systems, including immiscible mixtures, surfactant-stabilized emulsions, multiphase emulsions and pollutant-containing emulsions, demonstrating high separation efficiency (>99.9%), recyclability, and self-cleaning performance. Due to robust separation properties coupled with the excellent scalability, the membrane shows great implications for smart liquid separation.

SUBMITTER: Wang Y 

PROVIDER: S-EPMC9970982 | biostudies-literature | 2023 Feb

REPOSITORIES: biostudies-literature

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Scalable and switchable CO<sub>2</sub>-responsive membranes with high wettability for separation of various oil/water systems.

Wang Yangyang Y   Yang Shaokang S   Zhang Jingwei J   Chen Zhuo Z   Zhu Bo B   Li Jian J   Liang Shijing S   Bai Yunxiang Y   Xu Jianhong J   Rao Dewei D   Dong Liangliang L   Zhang Chunfang C   Yang Xiaowei X  

Nature communications 20230227 1


Smart membranes with responsive wettability show promise for controllably separating oil/water mixtures, including immiscible oil-water mixtures and surfactant-stabilized oil/water emulsions. However, the membranes are challenged by unsatisfactory external stimuli, inadequate wettability responsiveness, difficulty in scalability and poor self-cleaning performance. Here, we develop a capillary force-driven confinement self-assembling strategy to construct a scalable and stable CO<sub>2</sub>-resp  ...[more]

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