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Pressure-Induced Enhanced Covalency Difference in the Coordination of Am(III)/Eu(III) with an Unsymmetric
Xiaocheng Xu1, Shihui Wang1, Xiaofan Yang1
1College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310058, China.
Abstract:
The influence of high pressure on the coordination properties of f-block compounds is a topic of growing interest, which provides potential applications in the separation of actinide (An3+) and lanthanide (Ln3+) ions. In this study, we explore the effect of high pressure on the bonding characteristics of the unsymmetric phenanthroline extractant (Et-Tol-CyMe4-ATPhen, L) in its complexes with Am3+ and Eu3+ using density functional theory (DFT) and various bonding analyses. Pressures ranging from 0 to 10 GPa are applied to investigate changes in the geometry, electronic structure, and bond covalency. Our results show that high pressure significantly enhances the covalent character of the bonds between L and Am3+/Eu3+, evidenced by increased electron density ρ(r), delocalization indices (DI), stronger covalent orbital interactions (ΔEorb), and interatomic exchange interactions (Vxc). Notably, while the Eu-L bond lengths contract more than the Am-L bonds, the 5f orbitals of Am3+ are more sensitive to pressure than the relatively contracted 4f orbitals of Eu3+, resulting in an enhanced covalency difference confirmed by natural localized molecular orbital (NLMO) analysis. These findings highlight the significant role of high pressure in altering the bonding characteristics of f-block compounds, opening new avenues for further studies of highly efficient Am3+/Eu3+ separation.
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