首页> 外文期刊>Journal of chemical theory and computation: JCTC >Interplay between Electronic Correlation and Metal-Ligand Delocalization in the Spectroscopy of Transition Metal Compounds: Case Study on a Series of Planar Cu2+ Complexes
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Interplay between Electronic Correlation and Metal-Ligand Delocalization in the Spectroscopy of Transition Metal Compounds: Case Study on a Series of Planar Cu2+ Complexes

机译:在过渡金属化合物光谱中的电子相关和金属 - 配体中断之间的相互作用:案例研究一系列平面Cu2 +络合物

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We present a comprehensive theoretical study of the physical phenomena that determine the relative energies of three of the lowest electronic states of each of the square-planar copper complexes [CuCl4](2-), [CU(NH3)(4)](2+), and [Cu(H2O)(4)](2+) and present a detailed analysis of the extent to which truncated configuration interaction (CI) and coupled cluster (CC) theories succeed in predicing the excitation energies. We find that ligand-metal charge transfer (CT) single excitations play a crucial role in the correct determination of the properties of these systems, even though the first impact of these CT on the energetics of these systems appears at fourth-order in perturbation theory. We provide a minimal selected CI space for describing these systems with multireference theories and use a high-order perturbation theory analysis within this space to derive a simple and general physical picture for the LMCT process. We find that coupled cluster singles and doubles (CCSD) energy differences agree very well with near full CI values even though the D-1 diagnostics are large, which casts doubt on the usefulness of single-amplitude-based multireference diagnostics. Configuration interaction singles and doubles (CISD) severely underestimates the excitation energies, and the failure is a direct consequence of the size-inconsisency errors in CISD. Finally, we present reference values for the energy differences computed using explicitly correlated CCSD(T) and BCCD(T) theory.
机译:我们展示了对物理现象的综合理论研究,确定各平面平面铜配合物[CuCl4](2-),[Cu(NH3)(4)](2的相对电子状态+),和[Cu(H2O)(4)](2+),并提出了对截断配置交互(CI)和耦合集群(CC)理论的程度的详细分析,在预测激发能量方面成功。我们发现配体 - 金属电荷转移(CT)单一激励在正确的确定这些系统的性质的正确确定中起着至关重要的作用,即使这些CT对这些系统的能量学的第一次影响出现在扰动理论中的第四顺序中。我们提供了一个最小的选择CI空间,用于描述具有多引用理论的这些系统,并在该空间内使用高阶扰动理论分析来推导出LMCT过程的简单和一般的物理图像。我们发现耦合的群集单曲和双打(CCSD)能量差异非常普遍,即使D-1诊断很大,即使D-1诊断很大),这对基于单幅度的多引导诊断的有用性投放了怀疑。配置互动单打和双打(CISD)严重低估了激发能量,并且失败是CISD中尺寸 - 不一致误差的直接后果。最后,我们向使用明确相关的CCSD(T)和BCCD(T)理论来表示计算的能量差的参考值。

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