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Ultrafiltration separation of Am(VI)-polyoxometalate from lanthanides.

Authors :
Zhang, Hailong
Li, Ao
Li, Kai
Wang, Zhipeng
Xu, Xiaocheng
Wang, Yaxing
Sheridan, Matthew V.
Hu, Han-Shi
Xu, Chao
Alekseev, Evgeny V.
Zhang, Zhenyi
Yan, Pu
Cao, Kecheng
Chai, Zhifang
Albrecht-Schönzart, Thomas E.
Wang, Shuao
Source :
Nature; Apr2023, Vol. 616 Issue 7957, p482-487, 6p
Publication Year :
2023

Abstract

Partitioning of americium from lanthanides (Ln) present in used nuclear fuel plays a key role in the sustainable development of nuclear energy1–3. This task is extremely challenging because thermodynamically stable Am(III) and Ln(III) ions have nearly identical ionic radii and coordination chemistry. Oxidization of Am(III) to Am(VI) produces AmO<subscript>2</subscript><superscript>2+</superscript> ions distinct with Ln(III) ions, which has the potential to facilitate separations in principle. However, the rapid reduction of Am(VI) back to Am(III) by radiolysis products and organic reagents required for the traditional separation protocols including solvent and solid extractions hampers practical redox-based separations. Herein, we report a nanoscale polyoxometalate (POM) cluster with a vacancy site compatible with the selective coordination of hexavalent actinides (<superscript>238</superscript>U, <superscript>237</superscript>Np, <superscript>242</superscript>Pu and <superscript>243</superscript>Am) over trivalent lanthanides in nitric acid media. To our knowledge, this cluster is the most stable Am(VI) species in aqueous media observed so far. Ultrafiltration-based separation of nanoscale Am(VI)-POM clusters from hydrated lanthanide ions by commercially available, fine-pored membranes enables the development of a once-through americium/lanthanide separation strategy that is highly efficient and rapid, does not involve any organic components and requires minimal energy input.A new strategy to separate radioactive americium from lanthanides based on complexation with polyoxometalates and ultrafiltration technique is highly efficient and rapid, does not involve any organic components and requires minimal energy input. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00280836
Volume :
616
Issue :
7957
Database :
Complementary Index
Journal :
Nature
Publication Type :
Academic Journal
Accession number :
163244403
Full Text :
https://doi.org/10.1038/s41586-023-05840-z