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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Lithium extraction from seawater by manganese oxide ion sieve MnO2.0.5H(2)O
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Lithium extraction from seawater by manganese oxide ion sieve MnO2.0.5H(2)O

机译:锰氧化物离子筛MnO2.0.5H(2)O从海水中提取锂

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the current methods for lithium extraction from seawater, adsorption by manganese oxide ion sieves was considered to be the most promising one for industrial application. In this study, sol-gel, hydrothermal synthesis and two-stage heat treatment were used for preparing lithium ion sieve precursor Li1.6Mn1.6O4. Ion sieve MnO2.0.5H(2)O was then obtained after eluting Li+ from Li1.6Mn1.6O4 by acid treatment. The crystal structure, surface morphology and adsorption properties of the ion sieve were characterized by XRD, SEM, HRTEM, adsorption isotherms and kinetics. Furthermore, the dynamic adsorption/desorption processes of granulated ion sieve were studied with concentrated seawater (saltern bittern) and HCl solution. The results showed that the ion sieve and its precursor were nearly pure spinel manganese oxides, and possessed one-dimensional nanowires morphologies. After granulation, the ion sieve exhibited good adsorption performance, and its adsorption process was in accordance with Lagergren Kinetics Equation and Langmuir Isotherm Equation. Under continuous and dynamic conditions, the ion-exchange capacity of this ion sieve for saltern bittern (pH = 10) was 10.05 mg/g, and after acid treatment, lithium-rich solution which was 30 times more concentrated than bittern (900 times than seawater) was obtained. The results implied that the ion sieve could be used for lithium extraction and enrichment in seawater system, and had a good application prospect. (C) 2014 Elsevier B.V. All rights reserved.
机译:目前,从海水中提取锂的方法,锰氧化物离子筛的吸附方法被认为是最有前途的工业应用方法。本研究采用溶胶-凝胶法,水热合成法和两步热处理法制备锂离子筛前驱体Li1.6Mn1.6O4。通过酸处理从Li1.6Mn1.6O4洗脱Li +后,得到离子筛MnO2.0.5H(2)O。通过XRD,SEM,HRTEM,吸附等温线和动力学对离子筛的晶体结构,表面形貌和吸附性能进行了表征。此外,还研究了用浓海水(盐卤)和HCl溶液对离子筛的动态吸附/解吸过程。结果表明,离子筛及其前驱体几乎为纯尖晶石型锰氧化物,具有一维纳米线形态。造粒后,离子筛表现出良好的吸附性能,其吸附过程符合Lagergren动力学方程和Langmuir等温方程。在连续和动态条件下,该离子筛对盐卤盐溶液(pH = 10)的离子交换容量为10.05 mg / g,经过酸处理后,富锂溶液的浓度是盐卤溶液的30倍(是盐卤溶液的900倍)。海水)。结果表明,该离子筛可用于海水系统中锂的萃取富集,具有良好的应用前景。 (C)2014 Elsevier B.V.保留所有权利。

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