膜
材料科学
海水淡化
纳滤
渗透
制作
化学工程
纳米技术
生物污染
纳米棒
膜技术
电渗析
水运
离子交换
介孔材料
选择性
合成膜
饮用水净化
界面聚合
海水淡化
水处理
纳米
作者
Liping Zhen,Genping Meng,Xisheng Zhao,Wenting Guo,Yonghui Chen,Shuai Wei,Guowen Hu,Yuanhang Zhao,Jiarui Xu,Baodui Wang
摘要
ABSTRACT Nanofiltration membranes with tailorable sub‐1‐nm channels are essential for desalination and ion separation, yet scalable and eco‐friendly fabrication of function‐switchable membranes remains a formidable challenge. Here, we report a Palygorskite‐carboxymethylcellulose hybrid membrane platform that achieves dual functionality through precise channel engineering. Coordination‐driven self‐assembly in water yields two distinct membrane types from the same material system. The desalination membrane preserves the intrinsic sub‐1‐nm channels of Palygorskite nanorods, delivering high water permeance (>23 L m −2 h −1 bar −1 ) and a Na 2 SO 4 rejection (>99%). By contrast, the Li + /Mg 2+ separation membrane is constructed from acid‐etched nanorods bearing Mg 2+ ‐imprinted sites, affording expanded channels that enable selective Li + transport while capturing Mg 2+ via imprinting adsorption. This membrane achieves a Li + /Mg 2+ selectivity of approximately 175 in mixed solutions. Molecular dynamics simulations indicate rapid and selective transport of water and Li + through the respective sub‐1‐nm channels. Beyond superior separation performance, the membranes exhibit robust mechanical strength, long‐term operational stability, and excellent antifouling and antimicrobial properties. This one‐platform, dual‐function strategy demonstrates the scalable fabrication and tunable performance essential for practical water purification and lithium resource recovery.
科研通智能强力驱动
Strongly Powered by AbleSci AI