Abstract

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.

Keywords

Time-dependent density functional theoryRydberg formulaExcitationDensity functional theoryAtomic physicsPhysicsIntramolecular forceRange (aeronautics)ChemistryMolecular physicsExcited stateIonizationQuantum mechanicsMaterials science

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Publication Info

Year
2004
Type
article
Volume
120
Issue
18
Pages
8425-8433
Citations
1856
Access
Closed

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Cite This

Yoshihiro Tawada, Takao Tsuneda, Susumu Yanagisawa et al. (2004). A long-range-corrected time-dependent density functional theory. The Journal of Chemical Physics , 120 (18) , 8425-8433. https://doi.org/10.1063/1.1688752

Identifiers

DOI
10.1063/1.1688752