Covalent organic framework (COF) membrane holds great promise in water treat-ment. Improving the antifouling property of COF membrane is critical for practical application while rare investigations have been reported. Grafting fluorinated chains on the COF membrane surface is expected an effective strategy but quite challenging due to the lack of grafting sites. In this work, the defect engineering strategy is adopted to generate free amino groups as grafting sites through the Schiff-base reaction between amine monomer and mixed aldehyde monomers, then perfluoroalkyl chains are grafted on the COF membrane surface through the reaction between the free amino groups and the perfluorooctanoyl chloride. The content of perfluoroalkyl chains can be regulated and optimized by controlling the amount of free amino groups. The fluorinated COF membrane shows superior antifouling performance with a significantly increased flux recovery ratio and reduced flux decline ratio against oil/water emulsions and humic acid (FRR ≈ 98%, DRt = 10%). Furthermore, the fluorinated COF membrane exhibits high water permeance up to ≈115 L m-2 h-1 bar-1 while acquiring a high salt/dye selective factor. This work affords an effective approach to the development of antifouling, high-separation-performance COF membranes, and other kinds of organic molecular sieve membranes.
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http://dx.doi.org/10.1002/smll.202411917 | DOI Listing |
Sci Rep
March 2025
Virus Evolution Laboratory, Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, Spain.
Coxsackievirus B3 (CVB3), a member of the Enterovirus genus within the Picornaviridae family, has emerged as a key model for studying viral evolution and pathogenesis. Although traditionally considered obligate lytic viruses, recent research reveals that enteroviruses can also be released non-lytically within extracellular vesicles (EVs). This study explores the impact of mutations at position 63 of the VP3 capsid protein on CVB3 fitness and release mechanisms by substituting asparagine at this position with aromatic, charged, and aliphatic amino acids.
View Article and Find Full Text PDFLangmuir
March 2025
School of Chemistry and Chemical Engineering, Qingdao University, Qingdao 266071, Shandong, China.
This study investigates the mechanisms of CO adsorption and separation in COF (covalent organic framework) membranes modified with ionic liquids and DESs (deep eutectic solvents) under varying temperature and humidity conditions by molecular dynamics simulations. The results indicate that higher temperatures enhance the CO permeability, while an appropriate amount of water improves separation selectivity. The effects of DES and PEGIL (PEG-modified ionic liquid) solvents differ due to their distinct molecular structures.
View Article and Find Full Text PDFSmall
March 2025
Chemical Engineering and Pilot Plant Department, Engineering Research and Renewable Energy Institute, National Research Centre, Cairo, 12622, Egypt.
Covalent organic framework (COF) membrane holds great promise in water treat-ment. Improving the antifouling property of COF membrane is critical for practical application while rare investigations have been reported. Grafting fluorinated chains on the COF membrane surface is expected an effective strategy but quite challenging due to the lack of grafting sites.
View Article and Find Full Text PDFSmall
March 2025
Joint School of National University of Singapore and Tianjin University, International Campus of Tianjin University, Binhai New City, Fuzhou, 350207, China.
Covalent organic framework (COF) has been recognized as a disruptive material for fabricating organic molecular sieve membranes. Acquiring crystalline and defect-free COF membranes directly on polymeric substrates is important for practical applications yet is highly challenging. In this study, a noncovalent complex (NCX) modulated fabrication of COF membrane on hydrolyzed polyacrylonitrile (HPAN) substrate via counter diffusion is proposed.
View Article and Find Full Text PDFChem Soc Rev
March 2025
Department of Chemical Sciences, Indian Institute of Science Education and Research, Kolkata, Mohanpur 741246, India.
Thin film technology has emerged as a pivotal field with numerous industrial applications. Depending on their properties-such as magnetic characteristics, conductivity, architectural structure, stability, and functional backbones-thin films are widely utilized in optoelectronics, thin-film coatings, solar cells, energy storage devices, semiconductors, and separation applications. However, for all these applications, thin films must be securely attached to specific substrates, and substrate compatibility with both the thin film and the film-growth process is crucial for optimal performance.
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