Recent Advances in Rare Earth Element Recovery: Liquid–Liquid Extraction and Magnetophoretic Separation

IF 3.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Bailey Lake, , , Theo Siegrist, , , Thomas E. Albrecht, , , Hadi Mohammadigoushki, , , Munir Humayun, , and , Jamel Ali*, 
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Abstract

The unique physicochemical properties of rare earth elements (REEs) make them imperative for the production and improvement of advanced technology, renewable energy, and national defense applications. As these fields rapidly develop, there has been an increase in the demand for REEs. Due to the similar ionic charge and radii of adjacent REEs it is a challenge to selectively recover individual elements. Currently, the most common method for industrial REE separation is multistep traditional liquid–liquid extraction (T-LLE) systems. However, these systems generate large quantities of hazardous waste including flammable solvents, contaminated wastewater, and materials that cannot be recycled. There has been a recent increase in modifications to T-LLE systems, which has shown promising results in improving REE refinement and decreasing waste. This Review summarizes recent advances in solvent extraction systems other than T-LLE including aqueous two-phase systems (ATPS), nonaqueous systems (NAS) and systems evaluating the synergistic effects of multiple extractants or solvents in each phase. We also discuss developments in magnetophoretic separation methods that could be useful in solvent extraction in the future. Based on the findings of this Review, estimated Technology Readiness Levels (TRLs) for each of these systems are provided. These new systems are currently at TRLs of ≤5. Improving their TRLs and examining their industrial potential could lead to a reduction in operation cost and environmental impacts while improving separation efficiency and overall REE refinement, if practical in industrial settings.

Abstract Image

Abstract Image

稀土元素回收研究进展:液-液萃取和磁泳分离
稀土元素(ree)独特的物理化学性质使其在先进技术、可再生能源和国防应用的生产和改进中必不可少。随着这些油田的迅速发展,对稀土元素的需求也在增加。由于邻近稀土元素的离子电荷和半径相似,因此有选择地回收单个元素是一个挑战。目前,工业稀土分离最常用的方法是多步传统液液萃取(T-LLE)系统。然而,这些系统会产生大量的危险废物,包括易燃溶剂、受污染的废水和无法回收的材料。最近,对T-LLE系统的改进有所增加,这在改善稀土元素精炼和减少浪费方面显示出有希望的结果。本文综述了除T-LLE外溶剂萃取系统的最新进展,包括水两相萃取系统(ATPS)、非水萃取系统(NAS)和多萃取剂或溶剂在每相中的协同效应评价系统。我们还讨论了磁泳分离方法的发展,这些方法在未来的溶剂萃取中可能是有用的。根据这项审查的结果,提供了这些系统的估计技术准备水平(trl)。这些新系统目前的trl≤5。如果在工业环境中可行的话,提高它们的trl并研究它们的工业潜力可以降低操作成本和环境影响,同时提高分离效率和整体REE精细化。
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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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