吸附
插层(化学)
萃取(化学)
氢氧化物
材料科学
铝
水溶液
锂(药物)
选择性
密度泛函理论
无机化学
层状双氢氧化物
镁
离子
氢氧化锂
选择性吸附
化学
化学工程
水滑石
磷酸钒锂电池
热液循环
化学稳定性
碱金属
水热合成
作者
Lei Zhang,Yuanyuan Li,Xiaohan Qiao,Ruona Li,Tuo Li,Penggao Cheng,Jianping Zhang,Na Tang
出处
期刊:Desalination
[Elsevier BV]
日期:2025-08-15
卷期号:615: 119307-119307
被引量:1
标识
DOI:10.1016/j.desal.2025.119307
摘要
Aluminum-based lithium adsorbents (Li-Al LDHs) were a way to sustainable lithium extraction from aqueous resources. Despite advantages like acid-free regeneration and environmental benignity, their low lithium adsorption capacity remained a major limitation. Based on the Thinking of interlayer anion modification, density functional theory (DFT) simulations was used to predict interlayer spacing and deintercalation energy for common anions in aluminum-based clusters. And experimental validation was performed by intercalating CO₃ 2− anion into the adsorbent. CO₃ 2− anion insertion effectively expanded interlayer spacing and facilitated Li + diffusion; systematic characterization confirmed its successful incorporation into the Li-Al LDH framework. Adsorption experiments demonstrated that the Li + adsorption capacity was significantly enhanced compared with conventional Li-Al LDHs. Stability and selectivity were also investigated in the study. Anion intercalation improved Li-Al LDH capacity, deepened understanding of the structure-performance relationship of lithium adsorbents, and offered potential for scalable lithium recovery from brines and seawater. • DFT applied to the molecular structure design of aluminum based lithium adsorbents. • The CO 3 2− intercalated Li-Al-CO 3 LDH was synthesized by a hydrothermal method. • Under optimal conditions, the adsorption capacity of Li-Al-CO 3 LDH was 18.3 mg/g. • The separation factor between lithium and magnesium reached a significant value of 118.4. • The adsorption capacity remained above 95 % of the initial value after 30 cycles.
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