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A benchmark study of the vertical electronic spectra of the linear chain radicals C2H and C4H

机译:线性链自由基C2H和C4H的垂直电子光谱的基准研究

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The ability of coupled-cluster models to predict vertical excitation energies is tested on the electronic states of carbon-chain radicals of particular relevance to interstellar chemistry. Using spin-unrestricted and -restricted reference wave functions, the coupled-cluster singles and doubles (CCSD) model and a triples-including model (CC3) are tested on the radicals C2H and C4H. Both molecules exhibit low-lying excited states with significant double-excitation character (as well as states of quartet multiplicity) and are thus challenging cases for excited-state approaches. In addition, we employ two diagnostics for the reliability of the CC results: the approximate excitation level (AEL) relative to the ground state and the difference between excitation energies obtained with spin-unrestricted and spin-restricted reference wave functions (the U-R difference). We find that CCSD yields poor excitation energies for states with AEL significantly larger than ca. 1.1 and/or large U-R differences, as well as for certain states exhibiting large spin contamination or other inadequacies in the reference determinant. In such cases, connected triple excitations can be included in the model and generally provide improved results. Furthermore, we find that large discrepancies exist between CC and multireference (MR) results for certain states. These disagreements are not related to basis-set effects, but likely arise from the lack of spin adaptation in conventional spin-orbital CC implementations and active space selection in the MR models.
机译:在与星际化学特别相关的碳链自由基的电子状态下测试了耦合簇模型预测垂直激发能的能力。使用不受限制的自旋和参考波函数,在自由基C2H和C4H上测试了耦合簇单双模型(CCSD)和包括三联模型(CC3)。两种分子都表现出具有显着的双重激发特征的低洼激发态(以及四重态多重态),因此对于激发态方法来说是具有挑战性的情况。此外,我们采用两种诊断方法来确保CC结果的可靠性:相对于基态的近似激发能级(AEL)以及通过自旋无限制和自旋受限制的参考波函数获得的激发能之间的差(UR差) 。我们发现,对于AEL明显大于ca的状态,CCDD产生的激发能很差。 1.1和/或较大的U-R差异,以及某些在参考决定因素中表现出较大自旋污染或其他不足的状态。在这种情况下,连接的三重激励可以包含在模型中,并且通常可以提供改进的结果。此外,我们发现某些状态的CC和多参考(MR)结果之间存在较大差异。这些分歧与基集效应无关,但可能是由于常规自旋轨道CC实现中缺乏自旋适应性以及MR模型中的有效空间选择而引起的。

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