Extraction of Ln(III) and An(III) by N,N-di(2-ethylhexyl)- thio-diglycolamic Acid

IF 1.8 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Chang Jin, Qian Liu, Yu Du, Chao Xu, Tingting Liu, Tuo Fang, Ganlin Wang, Liyang Zhu, Yan Zhang, Suliang Yang, G. Tian
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引用次数: 0

Abstract

ABSTRACT The extraction of Nd(III), Eu(III), Am(III), and Cm(III), trivalent lanthanides and actinides in high level nuclear waste, by the extractant N,N-di(2-ethylhexyl)-thio-diglycolamic acid (HDEHSDGA, HA) is investigated via thermochemical and spectroscopic methods. In this study, HDEHSDGA behaves as a conventional mono-basic cation-exchanging ligand extracting Ln(III) and An(III) from nitrate solutions of pH region. The information obtained from the extraction experiments and the spectroscopic analyses indicate that the primary extracted complex species may be MA3 · 2H2O for these four cations and likely for the other trivalent f-elements. In the extracted complexes, the anionic monomer extractant A− coordinates to the metal ions presumably forming bidentate coordination via the carbonyl oxygen atom and one of the oxygen atoms of the carboxylate; it appears that the thio-ether does not directly participate in the complexation reaction. The results ultimately demonstrate that HDEHSDGA does not exhibit significant selectivity for An(III) over Ln(III), in contrast to results reported in a previous study conducted with unpurified extractant.
N,N-二(2-乙基己基)-硫代二甘醇酰胺萃取Ln(III)和An(III)
摘要采用热化学和光谱方法,研究了萃取剂N,N-二(2-乙基己基)-硫代二甘醇酰胺(HDEHSDGA,HA)对高放废物中Nd(III)、Eu(III。在本研究中,HDEHSDGA作为一种传统的单碱性阳离子交换配体,从pH区域的硝酸盐溶液中提取Ln(III)和An(III)。从提取实验和光谱分析中获得的信息表明,对于这四种阳离子,主要提取的络合物物种可能是MA3·2H2O,对于其他三价f元素,可能是。在提取的络合物中,阴离子单体萃取剂A−与金属离子配位,推测通过羰基氧原子和羧酸盐的一个氧原子形成双齿配位;硫醚似乎不直接参与络合反应。结果最终表明,HDEHSDGA对An(III)比对Ln(III)没有表现出显著的选择性,这与之前用未纯化萃取剂进行的研究中报道的结果相反。
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来源期刊
CiteScore
4.40
自引率
5.00%
发文量
15
审稿时长
8.4 months
期刊介绍: Solvent Extraction and Ion Exchange is an international journal that publishes original research papers, reviews, and notes that address all aspects of solvent extraction, ion exchange, and closely related methods involving, for example, liquid membranes, extraction chromatography, supercritical fluids, ionic liquids, microfluidics, and adsorption. We welcome submissions that look at: The underlying principles in solvent extraction and ion exchange; Solvent extraction and ion exchange process development; New materials or reagents, their syntheses and properties; Computational methods of molecular design and simulation; Advances in equipment, fluid dynamics, and engineering; Interfacial phenomena, kinetics, and coalescence; Spectroscopic and diffraction analysis of structure and dynamics; Host-guest chemistry, ion receptors, and molecular recognition.
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