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首页> 外文期刊>The Journal of Chemical Physics >A DFT-based theoretical model for the calculation of spectral profiles of lanthanide M-4(,5)-edge x-ray absorption
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A DFT-based theoretical model for the calculation of spectral profiles of lanthanide M-4(,5)-edge x-ray absorption

机译:基于DFT的理论模型,用于计算镧系元素M-4(,5)的光谱分布(,5)-deed X射线吸收

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This presentation reports the theoretical study of 3d core-electron excitation in lanthanide compounds in terms of electronic structure effects and optical properties. The calculations are done at the Density-Functional Theory (DFT) level complemented with an effective Hamiltonian based on ligand-field theory. The strategy consists of obtaining from DFT a totally symmetric density, where an active subspace is set up that forms the basis of the fivefold 3d and sevenfold 4f atomic orbitals of the lanthanide ion. This active subspace is defined with the fractional occupation of electrons, which represents openshell species with the composite configuration 3d(9)4f(n+1). Based on the ligand-field analysis of the DFT results, the multiplet energies and ligand-field effects associated with the configuration 3d(9)4f(n+1) are evaluated; and the X-ray absorption spectra are simulated in terms of the intra-atomic 4f(n) - 3d(9)4f(n+1) electron transitions within the electric-dipole approximation. Examples for application are proposed taking into consideration the isolated trivalent lanthanides ions and compounds Cs2NaPrX6, with X = F, Cl, and Br. The results are compared with available experimental data, where a good agreement is qualitatively achieved. Also, the screening of the inter-electron repulsion and spin-orbit coupling interaction is numerically obtained that allows one to establish a fully non-empirical treatment of the 3d core-electron excitation, which can be valuable in the characterization and modeling of the spectral profiles of lanthanide M-4,M-5-edge X-ray absorption spectroscopy. The enclosed theoretical model, which is being implemented in the Amsterdam Density Functional (ADF) suite of programs, is computationally economic and can be applied to any lanthanide system without limitations in terms of the size of the matrix elements of the effective Hamiltonian or the coordination symmetry of the lanthanide center. Published by AIP Publishing.
机译:这演示报告3d的理论研究芯电子激发在镧系元素化合物中的电子结构的效果和光学性质方面。计算是在基于配位场理论的有效哈密顿补充了密度泛函理论(DFT)级别进行。该策略包括从DFT获得一个完全对称的密度,其中的活性子空间设置一个形式的基础的五倍3d和七倍4f的所有镧系元素离子的原子轨道。这个子空间活性与电子的分数职业,其表示与该复合结构的3D(9)4F(N + 1)openshell物种定义。基于所述DFT的结果的配体场分析,与配置3D相关联的多重能量和配体场效应(9)4F(N + 1)进行评价;和X射线吸收光谱进行了模拟在所述帧内原子4f的术语(N) - >该电偶极子近似内三维(9)4F(N + 1)的电子跃迁。为应用实例,提出了考虑到隔离的三价镧系元素离子和化合物Cs2NaPrX6,其中X = F,Cl和Br。结果与现有的实验数据,其中一个很好的协议进行了定性比较实现。另外,进行了数值获得的电子间排斥力和自旋 - 轨道耦合相互作用的筛选,允许一个建立完全非经验治疗三维芯电子激发的,它可以是在表征有价值和光谱的建模镧系元素M-4的型材,M-5-边缘X射线吸收光谱。封闭理论模型,这是在节目的阿姆斯特丹密度泛函(ADF)套件正在执行,在计算上是经济,并且可以在有效哈密顿或协调的矩阵元素的尺寸方面可以应用于任何镧系元素系统,而不限制镧系中心对称。通过AIP发布发布。

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