2D lamellar membranes with defect-engineered hierarchical channels impart ultrafast and selective dye/salt separation

层状结构 盐(化学) 材料科学 化学工程 超短脉冲 化学 复合材料 有机化学 光学 生物化学 工程类 物理 激光器
作者
Tianmeng Zhang,Zheng Huang,Dandan Cui,Zicheng Luo,Xiuping Zhuo,Yanfeng Liu,Xiuyan Wang,Kai Wu,Jianfeng Zhang,Guibin Li,Shumei Sun,Han Zuilhof,Hao Lü
出处
期刊:Journal of Membrane Science [Elsevier BV]
卷期号:735: 124602-124602
标识
DOI:10.1016/j.memsci.2025.124602
摘要

Two-dimensional (2D) lamellar membranes hold immense promise for sustainable separation technologies, yet their inherent dense interlayer architecture compromises permeability and selectivity. Herein, we propose a defect engineering strategy to construct hierarchical nanofluidic channels within graphene oxide (GO) membranes, by using intercalating polypyrrole (PPy) nanosheets with in-plane nanopores. The synergistic assembly of GO and PPy nanosheets enables tuning of both interlayer spacing and intra-plane nanopores, thereby generating multiscale transport pathways. The optimized PPy/GO membrane achieves a trade-off between selectivity and permeability: >96% rejection for Congo red, <15% rejection for salts (NaCl, Na 2 SO 4 , CaCl 2 ), and a remarkable water flux of 310 L m -2 h -1 bar -1 — 5-fold higher than state-of-the-art 2D membranes. Interface selective sum frequency generation spectroscopy results reveal that PPy intercalation greatly enhances the order of hydrogen-bonded water at the membrane-water interface, which correlates with the fast and selective separation of dye and salt. Molecular dynamics and hydrodynamic simulations consolidate that the hierarchical channels enhance water permeation via defect-pore sieving, while selectively block organic dyes through size exclusion. Our work not only disentangles the intricate role of defect engineering in tailoring organic/salt separation for 2D membranes, but also provides a scalable approach for advanced separation systems in hypersaline wastewater treatment and resource recovery. • Fabricating PPy/GO lamellar membrane with channelled nanopores using defect engineering approach; • Achieving >96% rejection for selected organic dyes, <15% rejection for various salts, and in particular a water flux of 310 L m -2 h -1 bar -1 ; • Providing molecular insights for membrane function — attributing to an enhanced hydrogen-bonded structure of water molecules at this membrane interface.
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