Decomposition Of D- And F-Shell Contributions To Uranium Bonding From The Quantum Theory Of Atoms In Molecules: Application To Uranium And Uranyl Halides

INORGANICS(2018)

引用 16|浏览0
暂无评分
摘要
The electronic structures of a series of uranium hexahalide and uranyl tetrahalide complexes were simulated at the density functional theoretical (DFT) level. The resulting electronic structures were analyzed using a novel application of the Quantum Theory of Atoms in Molecules (QTAIM) by exploiting the high symmetry of the complexes to determine 5f- and 6d-shell contributions to bonding via symmetry arguments. This analysis revealed fluoride ligation to result in strong bonds with a significant covalent character while ligation by chloride and bromide species resulted in more ionic interactions with little differentiation between the ligands. Fluoride ligands were also found to be most capable of perturbing an existing electronic structure. 5f contributions to overlap-driven covalency were found to be larger than 6d contributions for all interactions in all complexes studied while degeneracy-driven covalent contributions showed significantly greater variation. sigma-contributions to degeneracy-driven covalency were found to be consistently larger than those of individual -components while the total -contribution was, in some cases, larger. Strong correlations were found between overlap-driven covalent bond contributions, U-O vibrational frequencies, and energetic stability, which indicates that overlap-driven covalency leads to bond stabilization in these complexes and that uranyl vibrational frequencies can be used to quantitatively probe equatorial bond covalency. For uranium hexahalides, degeneracy-driven covalency was found to anti-correlate with bond stability.
更多
查看译文
关键词
uranium, uranyl, halide, covalency, QTAIM, CASSCF, DFT, electron density
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要