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Selective recovery of indium via continuous counter-current foam separation from sulfuric acid solutions I - Application of anionic organophosphate surfactant as metal collector

机译:通过硫酸溶液的连续反电流泡沫分离选择性恢复铟 - Anionic有机磷表面活性剂作为金属收集器的应用

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摘要

Continuous counter-current foam separation (CCFS) with simultaneous injections of metal and surfactant solutions respectively into rising foam bed was applied to In(III) recovery from sulfuric acid solutions containing ternary metal ions of In/Cu/Zn. Through the screening tests of the surfactants in both conventional batch foam separation and CCFS, anionic organophosphate surfactant which has similar structure to phosphoric acid extractant (D2EHPA) was selected as the metal collector, with an addition of a nonionic co-surfactant as the foam stabilizer. The optimized surfactant combination was shown anionic A219B/nonionic POOE20 in this study; the complete recovery of In(III) was attained with the enrichment ratio of 5.5, whereas those of the other metals were suppressed in trace level, resulting in the excellent selective recovery. Moreover, metal solutions of quaternary In/Fe/Cu/Zn were also examined, and a dose of reductant for interfering Fe(III) into the metal solution was executed for improving the separation efficiency; the dose of ascorbic acid could invert the affinity order of A219B from Fe In to In Fe. The percent recovery and enrichment ratio of In(III) were 97% and 5.5, while the separation factors of In/Fe, In/Cu and In/Zn were 93, 1300 and 1300 respectively. This is our first favorable case for expanding the choice range of target metal ions in CCFS using anionic surfactants.
机译:连续逆流泡沫分离(CCF)分别同时注射到上升泡沫床中的金属和表面活性剂溶液,含有含有/ Cu / Zn的三元金属离子的硫酸溶液中的(III)回收。通过常规批料泡沫分离和CCF中的表面活性剂的筛选试验,选择与磷酸提取物(D2ehPA)具有相似的结构的阴离子有机磷酸酯表面活性剂作为金属收集器,并加入非离子共表面活性剂作为泡沫稳定剂。本研究中显示了优化的表面活性剂组合显示了阴离子A219B /非离子普o20; (III)的完全恢复,浓缩比例为5.5,而其他金属的富含水平抑制了这些金属,导致优异的选择性恢复。此外,还检查了/ Fe / Cu / Zn的季铵金属溶液,并且对干扰Fe(III)的剂量还原成金属溶液进行了改善;抗坏血酸剂量可以反转Fe&gt的A219B的亲和力顺序。进入& FE。 (III)的百分比回收率和富集率为97%和5.5,而In / Fe,In / Cu和In / Zn的分离因子分别为93,1300和1300。这是我们使用阴离子表面活性剂在CCF中扩展靶金属离子的选择范围的第一个有利的案例。

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