Role of tea polyphenols in enhancing the performance, sustainability, and catalytic cleaning capability of membrane separation for water-soluble pollutant removal

污染物 催化作用 多酚 持续性 化学 废物管理 化学工程 有机化学 工程类 生物化学 抗氧化剂 生态学 生物
作者
Ruilong Zhang,Jun Zhao,Jian Ye,Xiaohua Tian,Lulu Wang,Jianming Pan,Jiangdong Dai
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:468: 133793-133793 被引量:17
标识
DOI:10.1016/j.jhazmat.2024.133793
摘要

Tea polyphenols (TPs), like green tea polyphenol (GTP) and black tea polyphenol (BTP), with phenolic hydroxyl structures, form coordination and hydrogen bonds, making them effective for bridging inorganic catalysts and membranes. Here, TPs were employed as interface agents for the preparation of TPs-modified needle-clustered NiCo-layered double hydroxide/graphene oxide membranes (NiCo-LDH-TPs/GO). The incorporation of porous guest material, NiCo-LDH-TPs, facilitated water channel expansion, enhancing membrane permeability and resulting in the development of high-performance, sustainable catalytic cleaning membranes. The introduction of TPs through coordination weakened the surface electronegativity of NiCo-LDH, promoting a uniform mixed dispersion with GO and facilitating membrane self-assembly. NiCo-LDH-GTP/GO-5 and NiCo-LDH-BTP/GO-5 membranes demonstrated permeances of 85.98 and 90.76 L m-2 h-1 bar-1, respectively, with rejections of 98.73% and 99.54% for methylene blue (MB). Notably, the NiCo-LDH-BTP/GO-5 membrane maintained a high rejection of 97.11% even after 18 cycles in the catalytic cleaning process. Furthermore, the modification of GTP and BTP enhanced MB degradation through PMS activation, resulting in a 0.33% and 0.35% increase in the reaction rate constants of NiCo-LDH, respectively, while reducing metal ion spillover. These findings highlighted the potential of TPs in enhancing the efficiency and sustainability of catalytic cleaning GO membranes for water purification and separation processes. Tea polyphenols (TPs) were used to prepare needle-clustered NiCo-LDH-TPs/GO membranes that enhanced water channel expansion, permeability, and catalytic cleaning. TPs weakened the surface electronegativity of NiCo-LDH, promoting uniform dispersion with GO and membrane self-assembly. The membranes showed high permeation fluxes and rejection rates for methylene blue (MB). Notably, the NiCo-LDH-BTP/GO-5 membrane maintained exceptional performance after 18 cycles of catalytic cleaning. Modifying GTP and BTP enhanced MB degradation and reduces metal ion spillover. These findings demonstrated the potential of TPs in improving the efficiency and sustainability of catalytic cleaning GO membranes for water purification, with important environmental implications.
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