Tawada Yoshihiro, Tsuneda Takao, Yanagisawa Susumu, Yanai Takeshi, Hirao Kimihiko
Department of Applied Chemistry, Graduate School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan.
J Chem Phys. 2004 May 8;120(18):8425-33. doi: 10.1063/1.1688752.
We apply the long-range correction (LC) scheme for exchange functionals of density functional theory to time-dependent density functional theory (TDDFT) and examine its efficiency in dealing with the serious problems of TDDFT, i.e., the underestimations of Rydberg excitation energies, oscillator strengths, and charge-transfer excitation energies. By calculating vertical excitation energies of typical molecules, it was found that LC-TDDFT gives accurate excitation energies, within an error of 0.5 eV, and reasonable oscillator strengths, while TDDFT employing a pure functional provides 1.5 eV lower excitation energies and two orders of magnitude lower oscillator strengths for the Rydberg excitations. It was also found that LC-TDDFT clearly reproduces the correct asymptotic behavior of the charge-transfer excitation energy of ethylene-tetrafluoroethylene dimer for the long intramolecular distance, unlike a conventional far-nucleus asymptotic correction scheme. It is, therefore, presumed that poor TDDFT results for pure functionals may be due to their lack of a long-range orbital-orbital interaction.
我们将密度泛函理论中交换泛函的长程校正(LC)方案应用于含时密度泛函理论(TDDFT),并考察其在处理TDDFT严重问题方面的效率,即对里德堡激发能、振子强度和电荷转移激发能的低估。通过计算典型分子的垂直激发能,发现LC-TDDFT给出的激发能较为准确,误差在0.5 eV以内,振子强度也较为合理,而采用纯泛函的TDDFT对于里德堡激发给出的激发能低1.5 eV,振子强度低两个数量级。还发现,与传统的远核渐近校正方案不同,LC-TDDFT能清晰地再现乙烯-四氟乙烯二聚体在分子内距离较长时电荷转移激发能的正确渐近行为。因此,可以推测,纯泛函的TDDFT结果不佳可能是由于缺乏长程轨道-轨道相互作用。