锂(药物)
离子
化学
霍夫迈斯特系列
化学工程
纳米技术
材料科学
有机化学
工程类
内科学
医学
作者
Zhichao Song,Caijian Wang,Qianqian Wang,Kunyan Sui,Jingwei Hou,Pengfei Qi
标识
DOI:10.1016/j.cej.2025.166653
摘要
Autonomous extraction of low-concentration lithium is of great importance for alleviating the shortage of lithium resources. Inspired by the unidirectional ion transport of biomimetic ion channels, we designed gradient weak polyelectrolyte hydrogels-based lithium ion channels for autonomous enrichment of low-concentration lithium ions. In order to increase the chain density and stabilize the gradient structure distribution, the hydrogels were optimized through Hofmeister effect based on ion-water and ion-polymer interactions. After Na 2 SO 4 regulation, the gradient P(MAA-AM) hydrogels demonstrate superior elastic properties, stronger mechanical property and higher internal potential. Especially, the gradient P(MAA-AM) hydrogels are more conductive towards Li + than other cations, exhibiting a higher lithium selectivity. Owing to the enhanced chain density and the optimized gradient distribution, the obtained hydrogel-based channels demonstrate outstanding lithium enrichment performance via the synergistic effect of electrostatic attraction and lithium bonds. At an ultra-low Li-ion concentration of 1 mg/L, the gradient hydrogel displays a high lithium enrichment efficiency of up to 75 %. The designed gradient polyelectrolyte hydrogel-based lithium ions channels may have potential applications for the autonomous and selective enrichment of low-concentration lithium ions. • A pH-responsive gradient hydrogel-based lithium-ion channel was constructed. • Na 2 SO 4 -regulated hydrogels exhibit enhanced mechanical strength, viscoelasticity, and internal potential. • Gradient hydrogels exhibit high lithium-ion conductivity and selectivity. • Autonomous enrichment and release achieved for low-concentration lithium.
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