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Spin-adapted open-shell time-dependent density functional theory. III. An even better and simpler formulation

机译:自旋适应的开壳时间相关密度泛函理论。三,更好,更简单的配方

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The recently proposed spin-adapted time-dependent density functional theory (S-TD-DFT) [Z. Li and W. Liu, J. Chem. Phys. 133, 064106 (2010)]10.1063/1. 3463799 resolves the spin-contamination problem in describing singly excited states of high spin open-shell systems. It is an extension of the standard restricted open-shell Kohn-Sham-based TD-DFT which can only access those excited states due to singlet-coupled single excitations. It is also far superior over the unrestricted Kohn-Sham-based TD-DFT (U-TD-DFT) which suffers from severe spin contamination for those excited states due to triplet-coupled single excitations. Nonetheless, the accuracy of S-TD-DFT for high spin open-shell systems is still inferior to TD-DFT for well-behaved closed-shell systems. The reason can be traced back to the violation of the spin degeneracy conditions (SDC) by approximate exchange-correlation (XC) functionals. Noticing that spin-adapted random phase approximation (S-RPA) can indeed maintain the SDC by virtue of the Wigner-Eckart theorem, a hybrid ansatz combining the good of S-TD-DFT and S-RPA can immediately be envisaged. The resulting formalism, dubbed as X-TD-DFT, is free of spin contamination and can also be viewed as a S-RPA correction to the XC kernel of U-TD-DFT. Compared with S-TD-DFT, X-TD-DFT leads to much improved results for the low-lying excited states of, e.g., N2+, yet with much reduced computational cost. Therefore, X-TD-DFT can be recommended for routine calculations of excited states of high spin open-shell systems.
机译:最近提出的自旋适应时间相关密度泛函理论(S-TD-DFT)[Z. Li和W. Liu,J. Chem。物理133,064106(2010)] 10.1063 / 1。 3463799解决了自旋污染问题,描述了高自旋开壳系统的单激发态。它是标准的受限开放式基于Kohn-Sham的TD-DFT的扩展,该TD-DFT只能访问由于单线态耦合的单个激发而产生的那些激发态。它也比无限制的基于Kohn-Sham的TD-DFT(U-TD-DFT)优越得多,该TD-DFT由于三重态耦合的单个激发而在那些激发态下遭受严重的自旋污染。尽管如此,用于高自旋开壳系统的S-TD-DFT的精度仍然不如用于性能良好的闭壳系统的TD-DFT。原因可以追溯到通过近似交换相关(XC)功能违反自旋简并条件(SDC)。注意到自旋自适应随机相位近似(S-RPA)确实可以借助Wigner-Eckart定理维持SDC,可以立即设想结合了S-TD-DFT和S-RPA优点的混合ansatz。由此产生的形式主义被称为X-TD-DFT,没有自旋污染,也可以看作是对U-TD-DFT的XC内核的S-RPA修正。与S-TD-DFT相比,X-TD-DFT可以大大改善N2 +等低激发态的结果,但计算成本却大大降低。因此,建议将X-TD-DFT用于常规计算高自旋开壳系统的激发态。

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