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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Dependence of Excited State Potential Energy Surfaces on the Spatial Overlap of the Kohn Sham Orbitals and the Amount of Nonlocal Hartree Fock Exchange in Time-Dependent Density Functional Theory
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Dependence of Excited State Potential Energy Surfaces on the Spatial Overlap of the Kohn Sham Orbitals and the Amount of Nonlocal Hartree Fock Exchange in Time-Dependent Density Functional Theory

机译:时变密度泛函理论中激发态势能面对Kohn Sham轨道空间重叠和非局部Hartree Fock交换量的依赖性

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Time-dependent density functional theory (TDDFT) with standard GGA or hybrid exchange-correlation functionals is not capable of describing the potential energy surface of the S1 state of Pigment Yellow 101 correctly; an additional local minimum is observed at a twisted geometry with substantial charge transfer (CT) character. To investigate the influence of nonlocal exact orbital (Hartree-Fock) exchange on the shape of the potential energy surface of the S1 state in detail, it has been computed along the twisting coordinate employing the standard BP86, B3LYP, and BHLYP xc-functionals as well as the long-range separated (LRS) exchange-correlation (xc)-functionals LC-BOP, ω97X, ωPBE, and CAM-B3LYP and compared to RI-CC2 benchmark results. Additionally, a recently suggested A-parameter has been employed that measures the amount of CT in an excited state by calculating the spatial overlap of the occupied and virtual molecular orbitals involved in the transition. Here, the error in the calculated S1 potential energy curves at BP86, B3LYP, and BHLYP can be clearly related to the A-parameter, i.e., to the extent of charge transfer. Additionally, it is demonstrated that the CT problem is largely alleviated when the BHLYP xc-functional is employed, although it still exhibits a weak tendency to underestimate the energy of CT states. The situation improves drastically when LRS-functionals are employed within TDDFT excited state calculations. All tested LRS-functionals give qualitatively the correct potential energy curves of the energetically lowest excited states of P. Y. 101 along the twisting coordinate. While LC-BOP and ωB97X overcorrect the CT problem and now tend to give too large excitation energies compared to other non-CT states, ωPBE and CAM-B3LYP are in excellent agreement with the RI-CC2 results, with respect to both the correct shape of the potential energy curve as well as the absolute values of the calculated excitation energies.
机译:具有标准GGA或混合交换相关函数的时变密度泛函理论(TDDFT)不能正确描述颜料黄101的S1状态的势能面。在扭曲的几何体上观察到了另外的局部最小值,具有显着的电荷转移(CT)特性。为了详细研究非局部精确轨道(Hartree-Fock)交换对S1状态势能面形状的影响,已使用标准BP86,B3LYP和BHLYP xc函数沿扭转坐标计算了该位置,以及远程分离(LRS)交换相关(xc)功能的LC-BOP,ω97X,ωPBE和CAM-B3LYP,并与RI-CC2基准测试结果进行了比较。另外,最近提出了一种建议的A参数,该A参数通过计算跃迁中所占据的分子轨道和虚拟分子轨道的空间重叠来测量处于激发态的CT量。在此,在BP86,B3LYP和BHLYP处计算出的S1势能曲线中的误差可以明显地与A参数有关,即与电荷转移的程度有关。另外,已经证明,当使用BHLYP xc-functional时,CT问题在很大程度上得到缓解,尽管它仍然表现出低估CT状态能量的趋势。当在TDDFT激发态计算中使用LRS功能时,情况会大大改善。所有经过测试的LRS功能均沿扭曲坐标定性给出了P. Y. 101的能量最低激发态的正确势能曲线。尽管LC-BOP和ωB97X校正了CT问题,并且与其他非CT状态相比,现在倾向于提供太大的激发能量,但就正确的形状而言,ωPBE和CAM-B3LYP与RI-CC2结果非常吻合势能曲线的绝对值以及计算出的激发能的绝对值。

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