Organic Ligand-Mediated Dissolution and Fractionation of Rare-Earth Elements (REEs) from Carbonate and Phosphate Minerals

IF 2.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY ACS Earth and Space Chemistry Pub Date : 2024-04-25 DOI:10.1021/acsearthspacechem.4c00009
Yinghao Wen, Pan Liu, Qian Wang, Simin Zhao and Yuanzhi Tang*, 
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Abstract

Global efforts to build a net-zero economy and the irreplaceable roles of rare-earth elements (REEs) in low-carbon technologies urge the understanding of REE occurrence in natural deposits, discovery of alternative REE resources, and development of green extraction technologies. Advancement in these directions requires comprehensive knowledge on geochemical behaviors of REEs in the presence of naturally prevalent organic ligands, yet much remains unknown about organic ligand-mediated REE mobilization/fractionation and related mechanisms. Herein, we investigated REE mobilization from representative host minerals induced by three representative organic ligands: oxalate, citrate, and the siderophore desferrioxamine B (DFOB). Reaction pH conditions were selected to isolate the ligand-complexation effect versus proton dissolution. The presence of these organic ligands displayed varied impacts, with REE dissolution remarkably enhanced by citrate, mildly promoted by DFOB, and showing divergent effects in the presence of oxalate, depending on the mineral type and reaction pH. Thermodynamic modeling indicates the dominant presence of REE–ligand complexes under studied conditions and suggests ligand-promoted REE dissolution to be the dominant mechanism, consistent with experimental data. In addition, REE dissolution mediated by these ligands exhibited a distinct fractionation toward heavy REE (HREE) enrichment in the solution phase, which can be mainly attributed to the formation of thermodynamically predicted more stable HREE–ligand complexes. The combined thermodynamic modeling and experimental approach provides a framework for the systematic investigation of REE mobilization, distribution, and fractionation in the presence of organic ligands in natural systems and for the design of green extraction technologies.

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有机配体介导的碳酸盐和磷酸盐矿物中稀土元素 (REE) 的溶解和分馏
全球都在努力建设零净经济,稀土元素(REE)在低碳技术中发挥着不可替代的作用,这促使人们了解天然矿床中的稀土元素,发现替代稀土元素资源,并开发绿色萃取技术。要在这些方面取得进展,就必须全面了解稀土元素在天然有机配体存在下的地球化学行为,但有机配体介导的稀土元素迁移/分馏及相关机制仍有许多未知之处。在此,我们研究了草酸盐、柠檬酸盐和苷酸盐去铁胺 B(DFOB)这三种代表性有机配体诱导的代表性宿主矿物中的 REE 迁移。选择反应 pH 值条件是为了分离配体络合效应与质子溶解效应。根据矿物类型和反应 pH 值的不同,这些有机配体的存在会产生不同的影响,柠檬酸盐会显著促进 REE 的溶解,DFOB 会轻微促进 REE 的溶解,而草酸盐的存在则会产生不同的影响。热力学建模表明,在研究条件下,REE-配体复合物占主导地位,并表明配体促进 REE 溶解是主要机制,这与实验数据一致。此外,在这些配体的介导下,溶液相中的 REE 溶解表现出明显的重 REE(HREE)富集分馏,这主要归因于形成了热力学上预测的更稳定的 HREE 配体。热力学建模与实验相结合的方法为系统研究自然系统中有机配体存在时的 REE 迁移、分布和分馏以及绿色萃取技术的设计提供了一个框架。
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来源期刊
ACS Earth and Space Chemistry
ACS Earth and Space Chemistry Earth and Planetary Sciences-Geochemistry and Petrology
CiteScore
5.30
自引率
11.80%
发文量
249
期刊介绍: The scope of ACS Earth and Space Chemistry includes the application of analytical, experimental and theoretical chemistry to investigate research questions relevant to the Earth and Space. The journal encompasses the highly interdisciplinary nature of research in this area, while emphasizing chemistry and chemical research tools as the unifying theme. The journal publishes broadly in the domains of high- and low-temperature geochemistry, atmospheric chemistry, marine chemistry, planetary chemistry, astrochemistry, and analytical geochemistry. ACS Earth and Space Chemistry publishes Articles, Letters, Reviews, and Features to provide flexible formats to readily communicate all aspects of research in these fields.
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