渗透
膜
结垢
化学工程
水处理
饮用水净化
材料科学
光催化
纳米技术
工艺工程
环境工程
化学
环境科学
工程类
有机化学
催化作用
生物化学
渗透
作者
Zixin Zhang,Huaqiang Fu,Zhe Wang,Wei Qian,Xin Zhao,Yunfa Si,Jiannan Guo,Shaowen Cao,Daping He
标识
DOI:10.1002/adsu.202300597
摘要
Abstract High‐efficiency and sustainable membrane purification technology is highly desirable but unattainable in the field of water treatment. 2D materials are emerging as very promising candidates for water treatment applications. However, membranes assembled by pure 2D materials lack reasonable structural and functional design, usually exhibiting relatively low water permeance, purification performance, and fouling resistance. Here, a mixed‐dimensional membrane is designed to solve the above‐mentioned problems by assembling two kinds of in situ grown 0D@2D functional building blocks of SiO 2 @GO and TiO 2 @MXene. Specifically, the obtained membrane exhibits high and maintainable water permeance of 2114 L m −2 h −1 bar −1 as well as high rejection rates toward organic dyes thanks to the plentiful firm water channels constructed by 0D@2D structures and the negative charges on both SiO 2 @GO and TiO 2 @MXene, respectively. Moreover, the 0D@2D TiO 2 @MXene serves as photocatalyst, rendering the composite membrane intriguing self‐cleaning function under UV irradiation, which is verified by the high recovery ratios of water permeance (97.5%) and dye interception rate (98.7%). Thus, this work offers a promising approach for the design of highly efficient and sustainable membrane for separation and purification purposes.
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