Dawei Fang, Shilong Suo, Donglu Fu, Kunhao Liang, Jing Qiao and Zongren Song
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引用次数: 0
摘要
在全球能源转型的大背景下,锂资源的高效开采已成为新能源产业链的关键一环。针对从盐湖盐水中提取锂存在的选择性差、吸附量低和环境问题等问题,本研究开发了一种新型铝基吸附剂/沸石分子筛复合吸附剂(LiAl-LDHs/ZSM-5)。通过种子辅助合成ZSM-5分子筛载体,构建了具有分层多孔结构的材料,然后原位水热生长锂铝层状双氢氧化物(LiAl-LDHs)。通过XRD、FT-IR和SEM对其进行了系统表征,确定了其晶体结构、官能团分布和微观形貌。单因素实验优化了关键参数(ZSM-5: LiAl-LDHs = 1:2)和吸附条件(pH = 7, T = 25℃,C = 10 g L−1)。动力学分析表明,吸附符合准二级模型,表明以化学吸附为主。该复合材料具有高选择性(αLi Mg = 188.13)和可回收性,为开发高Mg2+/Li+比资源提供了环保解决方案。
An aluminum-based adsorbent/zeolite molecular sieve composite for the sorption of lithium in the salt lake
In the context of the global energy transition, the efficient extraction of lithium resources has become a critical link in the new energy industry chain. Addressing challenges such as poor selectivity, low adsorption capacity, and environmental concerns in extracting lithium from salt lake brines, this study developed a novel aluminum-based adsorbent/zeolite molecular sieve composite adsorbent (LiAl-LDHs/ZSM-5). The material was constructed with a hierarchical porous structure through seed-assisted synthesis of the ZSM-5 molecular sieve carrier, followed by in situ hydrothermal growth of lithium-aluminum layered double hydroxide (LiAl-LDHs). Systematic characterization via XRD, FT-IR, and SEM confirmed its crystal structure, functional group distribution, and micro-morphology. Single-factor experiments optimized key parameters (ZSM-5 : LiAl-LDHs = 1 : 2) and adsorption conditions (pH = 7, T = 25 °C, C = 10 g L−1). Kinetic analysis revealed that the adsorption conformed to the pseudo-second-order model, indicating chemisorption-dominated mechanisms. The composite demonstrated high selectivity (αLi Mg = 188.13) and recyclability in authentic salt lake brine, offering an environmentally friendly solution for exploiting high Mg2+/Li+ ratio resources.
期刊介绍:
An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.