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Polypropylene hollow fiber membrane based on dopamine hydrophilic
modification and oil-water separation performance study
Authors: LI Yudong1, ZHANG Jing1, LI Yanyan1, XIAO Changfa2, LIU Zhen1
Units: State Key Laboratory of Separation Membranes and Membrane Processes, Tiangong University
KeyWords: polypropylene hollow fibre membrane; hydrophilicity; dopamine; anti-fouling; oil/water separation
ClassificationCode:TQ028
year,volume(issue):pagination: 2024,44(5):20-31

Abstract:
Based on the oxidative selfpolymerization mechanism of dopamine (DA), the two were crosslinked and coated on the surface of polypropylene hollow fibre membrane (PPHFM) through a ringopening reaction between the epoxy group on 3-(2,3-epoxypropyloxy)propyltrimethoxysilane (KH560) and a primary amine on polyethyleneimine (PEI), and then dopamine(DA) is oxidized to quinone groups in a weakly alkaline environment and reacts with the amino group of the PEI in a Michael addition or Schiff base reaction, which further cross-links the DA with the PEI, which is then coated on the film surface.The membrane surface chemical composition and surface morphology were characterised by ATR-FTIR, XPS, SEM and AFM, and the hydrophilicity and oilwater separation properties of the modified membrane were also tested. The results showed that the pure water flux of the modified membrane was increased from (124.8±6.3) kg/(m2·h) of the original membrane to (363±8.1) kg/(m2·h). The separation efficiencies for different types of oilinwater emulsions were all above 96%, and the flux recovery rates were all higher than 86%, indicating that the PHFMKH560/PEIPDA membranes have good permeability, resistance to oil contamination and reusability. In addition, the modified membranes showed good chemical stability in acidic, weakly alkaline and high concentration salt solution environments, which is conducive to the efficient treatment of oily wastewater with complex composition and has broad application prospects. 
 

Funds:
国家自然科学基金项目(52173038)

AuthorIntro:
李玉懂(1996-),男,河南商丘人,硕士生,研究方向为中空纤维膜的制备及油水分离性能研究.*通讯作者,E-mail:poly1122@sina.com

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