膜
纳滤
电解质
材料科学
化学工程
渗透(战争)
选择性
电荷密度
电荷(物理)
合成膜
静电学
磁导率
电荷
纳米技术
杰纳斯
化学
化学物理
锂(药物)
铵
电磁屏蔽
膜技术
膜结构
屏蔽效应
表面电荷
电场
分子动力学
作者
Yanrui Wang,Yaru Zhang,Meng Zhang,Shu Jiang,Xiaobin Tang,Heng Liang
标识
DOI:10.1038/s41467-025-66887-2
摘要
Nanofiltration (NF) membranes with high Li+/X2+ (Co2+, Mn2+, etc.) selectivity are crucial for cost-effective Li+ recovery, addressing the global lithium shortage. However, conventional positively charged NF membranes typically exhibit Janus structure, conferring low Li+ penetration and permeability, and are negatively affected by the electrostatic shielding effects. Inspired by the internal electrical structure of dust storms, where positive-negative mosaic-like charge structure generates strong electric fields to facilitate particle transport, this study proposes a discrete micro-nano isolated island strategy to regulate the charge distribution within the NF membrane. A quaternary ammonium electrolyte was designed to modify the NF membrane, enabling the development of anti-Janus membranes with mosaic-like charge structure. The resulting anti-Janus membranes demonstrated an exceptional Li+/X2+ selectivity, exceeding that of conventional PIP-TMC membranes by 647%-904%, with Li+ penetration at 84.99% and permeability at 20.72 LMH/bar. Furthermore, this study introduces an evaluation metric, Critical Efficiency Product (CEP), for specifically assessing Li⁺ recovery performance.
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