Shu Yinan, Parker Kelsey A, Truhlar Donald G
Department of Chemistry, Chemical Theory Center, and Minnesota Supercomputing Institute, University of Minnesota , Minneapolis, Minnesota 55455-0431, United States.
J Phys Chem Lett. 2017 May 18;8(10):2107-2112. doi: 10.1021/acs.jpclett.7b00594. Epub 2017 Apr 27.
Time-dependent Kohn-Sham density functional theory has been used successfully to compute vertical excitation energies, especially for large molecular systems. However, the lack of double excitation character in the excited amplitudes produced by linear response in the adiabatic approximation holds it back from broader applications in photochemistry; for example, it shows (3N - 7)-dimensional conical intersection seams (where N is the number of atoms) between ground and excited states, although the correct dimensionality is 3N - 8. In this letter, we present a new, conceptually simple, easy-to-implement, and easy-to-use way to employ time-dependent Kohn-Sham density functional theory that has global accuracy comparable with the conventional single-functional version and that recovers the double cone topology of the potential energy surfaces at S/S conical intersection seams. The new method is called the dual-functional Tamm-Dancoff approximation (DF-TDA).
含时柯恩-沈密度泛函理论已成功用于计算垂直激发能,特别是对于大分子体系。然而,绝热近似下线性响应产生的激发振幅中缺乏双激发特征,这使其在光化学中的更广泛应用受到限制;例如,它显示了基态和激发态之间的(3N - 7)维锥形交叉缝(其中N是原子数),尽管正确的维数是3N - 8。在这封信中,我们提出了一种新的、概念简单、易于实现且易于使用的方法来应用含时柯恩-沈密度泛函理论,该方法具有与传统单泛函版本相当的全局精度,并且在S/S锥形交叉缝处恢复了势能面的双锥拓扑结构。这种新方法称为双泛函塔姆-丹科夫近似(DF-TDA)。