化学
锕系元素
配位场理论
铀
配体(生物化学)
共振非弹性X射线散射
卤化物
金属
散射
电子结构
非弹性散射
领域(数学)
非弹性中子散射
结晶学
原子物理学
计算化学
无机化学
核物理学
物理
数学
纯数学
光学
离子
生物化学
受体
有机化学
作者
Timothy G. Burrow,Nathan M. Alcock,Myron S. Huzan,Maja A. Dunstan,John A. Seed,Blanka Detlefs,Pieter Glatzel,Myrtille O. J. Y. Hunault,Jesper Bendix,Kasper S. Pedersen,Michael L. Baker
摘要
Understanding the nature of metal–ligand bonding is a major challenge in actinide chemistry. We present a new experimental strategy for addressing this challenge using actinide 3d4f resonant inelastic X-ray scattering (RIXS). Through a systematic study of uranium(IV) halide complexes, [UX6]2–, where X = F, Cl, or Br, we identify RIXS spectral satellites with relative energies and intensities that relate to the extent of uranium-ligand bond covalency. By analyzing the spectra in combination with ligand field density functional theory we find that the sensitivity of the satellites to the nature of metal–ligand bonding is due to the reduction of 5f interelectron repulsion and 4f-5f spin-exchange, caused by metal–ligand orbital mixing and the degree of 5f radial expansion, known as central-field covalency. Thus, this study furthers electronic structure quantification that can be obtained from 3d4f RIXS, demonstrating it as a technique for estimating actinide-ligand covalency.
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