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Separation and Purification of Rare-Earth Elements Based on Electrophoretic Migration (PART II)

机译:基于电泳迁移的稀土元素的分离与纯化(第二部​​分)

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Rare earth elements (REEs) are critical materials in many leading-edge technology products. However, REE separation outside China has remained a challenge in addressing environmental concerns of current production. The author has worked on a technique employing the emphasised variability in the electrophoretic mobility (μ_i) of REE for the purpose of REE separation. In continuation of the results presented in IMPC 2016 [1], this contribution summarizes the progress achieved in 2016 and 2017. The major goal was to increase the REEs concentration by a factor of 1000 and to attenuate the consequent drawbacks, specifically joule heating effect. Amphiprotic hydroxylic solvent was selected to replace water, which has a major impact on the complexation mechanism and buffer requirement. Non-aqueous media result in a significant drop in the specific molar conductivity of the electrolyte, whilst μ_i reduces several times only. Moreover, a quasi-steady state electrophoretic separation in conjunction with temperature gradient focusing is adapted to improve scalability.
机译:稀土元素(REES)是许多前沿技术产品中的关键材料。然而,中国以外的雷厄分离在解决当前生产的环境问题方面仍然是一项挑战。作者已经研究了一种在REE的电泳迁移率(μ_i)中采用强调可变性的技术,用于重新分离。在2016年IMPC中提出的结果的延续中,这一贡献总结了2016年和2017年实现的进展。主要目标是将REES集中增加1000倍,并效仿随后的缺点,特别是焦耳热效应。选择两性羟基溶剂替代水,对络合机制和缓冲要求具有重大影响。非水介质导致电解质的特定摩尔电导率的显着下降,而μ_i仅减少了几次。此外,适于与温度梯度聚焦结合的准稳态电泳分离,适于提高可扩展性。

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