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Selective separation of thorium and uranyl in phases of different polarity using novel benzoxazole-based ligands: A DFT study

[Display omitted] •Investigating the separation effect of the ligands on Th4+/UO22+ in four solvents, and determining the separation form.•The N atom in oxazole ring of the ligand is more nucleophilic than that in pyridine ring.•Revealing the electronic transfer within different components of the co...

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Published in:Journal of molecular liquids 2023-11, Vol.390, p.123108, Article 123108
Main Authors: Li, Ying-Fu, Kong, Xiang-He, Ma, Ming-Jie, Ren, Ai-Min, Wu, Tong-Shun, Chu, Hui-Ying, Li, Hui, Nie, Chang-Ming, Zou, Lu-Yi
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Language:English
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Summary:[Display omitted] •Investigating the separation effect of the ligands on Th4+/UO22+ in four solvents, and determining the separation form.•The N atom in oxazole ring of the ligand is more nucleophilic than that in pyridine ring.•Revealing the electronic transfer within different components of the complex by ETS-NOCV method.•Providing the Gibbs free energy changes of the possible twelve reaction equations for thorium.•Suggesting a potential application of benzoxazole-based ligands in the separation of Th4+/UO22+. The separation of thorium and uranium is an important guarantee for the fuel cycle of thorium-based molten salt reactors. Benzoxazole-based ligands have a wide range of applications and are also potential ligands for actinide separation. In this work, density functional theory (DFT) calculations were used to study the intrinsic properties of two ligands, 2,6-bis(benzo[d]oxazole-2-yl)pyridine (ligand a) and 1-(6-(4-acetylbenzo[d]oxazol-2-yl)pyridin-2-yl)ethan-1-one (ligand b), revealing the structural characteristics and complexation behavior of their complexes with Th4+/UO22+. Quantum theory of atoms in molecules (QTAIM) and extended transition state - natural orbitals for chemical valence (ETS-NOCV) analyses show that the ligands form classical coordination bonds with Th4+/UO22+, with M−Noz bonds stronger than M−Npy bonds and partial electron acceptance by carbonyl O. The thermodynamic properties were used to evaluate the separation performance of these ligands for Th4+/UO22+ in four solvents (water, 1-hexanol, n-octanol and n-dodecane), with La more suitable for back extraction process and Lb having stronger binding with Th4+/UO22+. This work provides valuable theoretical insights into Th4+/UO22+ separation based on benzoxazole.
ISSN:0167-7322
1873-3166
DOI:10.1016/j.molliq.2023.123108