钨酸盐
钼
钨
萃取(化学)
水溶液
试剂
传质
残液
化学
材料科学
溶剂
化学工程
色谱法
分析化学(期刊)
无机化学
冶金
有机化学
工程类
作者
Shengpeng Su,Yanfang Huang,Bingbing Liu,Guihong Han,Yubin Xue,Yizhuang David Wang
标识
DOI:10.1021/acssuschemeng.1c05287
摘要
Deep separation of low concentrations of molybdenum from tungstate solution has been a technical bottleneck in tungsten metallurgy and subsequent value-added utilization of tungsten products. A feasible strategy, named microbubble floating-extraction, was proposed and employed to achieve the high-efficiency and deep separation of molybdenum from tungstate solutions in this work. It was demonstrated that reagent mineralization is crucial for the formation of MoS42––N263 hydrophobic complexes, which is the rate-determining step of microbubble floating-extraction. Owing to the higher bubble and interface mass transfer rates, microbubble floating-extraction can achieve high-efficiency enrichment and deep separation of MoS42––N263 complexes with a large aqueous-to-oil phase ratio. The separation mechanisms of microbubble floating-extraction include the attachment process of MoS42––N263 hydrophobic complexes on the surface of rising microbubbles and the mass transfer process at the oil–water interface. Compared with solvent extraction, the flotation efficiency of molybdenum increases from 98.61 to 99.14%, while the loss rate of tungsten decreases from 3.31 to 2.12% under the optimal conditions. The microbubble floating-extraction exhibits significant advantages of high separation efficiency, a high enrichment coefficient, and low consumption of organic solvents.
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