酸性矿井排水
萃取(化学)
排水
离子液体
稀土
环境科学
溶剂萃取
剥离(纤维)
污染物
溶剂
化学
环境化学
矿物学
材料科学
色谱法
催化作用
有机化学
复合材料
生物
生态学
作者
Tommee Larochelle,Aaron Noble,Kris Strickland,Allie Ahn,Paul Ziemkiewicz,James Constant,David Hoffman,Caitlin Glascock
出处
期刊:Minerals
[Multidisciplinary Digital Publishing Institute]
日期:2022-10-22
卷期号:12 (11): 1337-1337
被引量:9
摘要
Acid mine drainage is a legacy environmental issue and one of the largest pollutants in many mining districts throughout the world. In prior work, the authors have developed a process for the recovery of critical materials, including the rare earth elements, from acid mine drainage using a preconcentration step followed by solvent extraction as a concentration and purification technology. As part of the downstream technology development efforts, we have synthesized a suite of ionic liquid extractants that facilitate greater separation factors leading to lower capital costs and reduced environmental impacts. This article provides a comparison of the conventional extractants D2EHPA, EHEHPA and C572 with their respective ionic liquids [c101][D2EHP,c101][EHEHP] and [c101][C572] for the recovery of rare earth elements from acid mine drainage. In the study, laboratory-scale, multi-contact solvent extraction tests were conducted at high and low extractant/dosages. The results show that the ionic liquids varied in performance, with [c101][D2EHP] and [c101][EHEHP] performing poorer than their conventional counterparts and [c101][c572] performing better. Recommendations for further study on [c101][c572] include stripping tests, continuous pilot testing, and techno-economic analysis.
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