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Polyamine-based thin-film composite nanofiltration membrane embedded with catalytic chemical additive for enhanced separation performance and acid stability

纳滤 薄膜复合膜 化学工程 热稳定性 界面聚合 化学稳定性 化学 色谱法 有机化学 聚合物 反渗透 生物化学 工程类 单体
作者
Kayode Hassan Lasisi,Kaisong Zhang
出处
期刊:Journal of Membrane Science [Elsevier BV]
卷期号:644: 120155-120155 被引量:23
标识
DOI:10.1016/j.memsci.2021.120155
摘要

Nanofiltration (NF) membranes with excellent acid stability and enhanced separation performance are of great benefit in treating acid wastewater and meeting freshwater demand. In this study, terephthalic acid (TPA) molecules with unique catalytic reactivity were directly incorporated as a chemical additive into the membrane selective layer via interfacial polymerization reaction to form a novel polyamine-based nanofiltration membrane. The resultant membrane morphology, chemical and functional composition, hydrophilicity, surface charge, separation performance, thermal stability and acid resistance were all investigated. The results showed improved hydrophilicity, electronegativity and cross-linking degree of the membranes. Compared with the bare membrane, the TPA incorporated membrane performance was best at 0.15% TPA concentration with improved water permeability of 14.1 LMH.bar −1 which was 1.6 times the control with an excellent salt rejection of 96.7% for MgCl 2 . Furthermore, after exposure to 5% (w/w) HCl and 20% (w/w) H 2 SO 4 acid solutions at 25 °C for 60-days, the membranes displayed excellent acid stability with appreciable increase and a corresponding decrease in water fluxes and salt rejections. No obvious change was observed in the membrane surface as revealed by the SEM, FTIR and XPS analysis after exposure period expiration. In addition, the membrane showed excellent pressure resistance and long-term stability after acid exposure for 30 days. Overall, incorporating TPA into the membrane provides a scalable system with great potential in water desalination and acid wastewater treatment. • Terephthalic acid (TPA) molecule act as additive/co-monomer for novel TFC membrane. • Incorporation of TPA enhances hydrophilicity, surface charge and thermal stability. • Optimal membrane has 14.1 LMHbar −1 water flux and 96.7% of MgCl 2 rejection. • Optimal membrane shows excellent acid stability after 60 days exposure period. • Membrane shows good prospect in water desalination and acid wastewater treatment.
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