## Abstract A modified regional selfโinteraction correction (mRSIC) method is proposed for obtaining accurate coreโexcitation energies in timeโdependent density functional theory (TDDFT) calculations. The mRSIC method is an improvement of the RSIC method (Tsuneda et al. J Comput Chem 2003, 24, 1592
Density functional calculations with configuration interaction for the excited states of molecules
โ Scribed by Stefan Grimme
- Publisher
- Elsevier Science
- Year
- 1996
- Tongue
- English
- Weight
- 710 KB
- Volume
- 259
- Category
- Article
- ISSN
- 0009-2614
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โฆ Synopsis
Configuration interaction (CI) calculations restricted to single excitations with respect to a closed-shell ground state determinant have been performed using modified CI-Hamiltonian matrix elements. Shifted molecular-orbital (MO) eigenvalues from Kohn-Sham density functional theory (DVI') are used in the diagonal matrix elements. All Coulomb type two-electron integrals are scaled by an empirically determined factor. The approach, which is applicable to large molecules, is used with the ground state Kohn-Sham MOs expressed in extended Gaussian AO basis sets. The excited singlet and triplet states of a wide range of molecules including aromatic hydrocarbons as large as pentacene (C22Hjo) have been investigated. The errors of vertical excitation energies are in most cases below 0.2 eV, even for molecules for which traditional ab initio CI methods have substantial difficulties. The quality of the wavefunctions is examined by calculating the electronic circular dichroism spectra of systems with low symmetry (camphor, 4,5-dimethylphenanthrene) and good agreement with experiment is found.
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For the lowest energy 5t;ltes of tite hi@ molecule, zero-order nlulriconf~~~r3tiOn~ Wavefunctions are corisrrtlcted by sn iterative process, the remaining configuration interaction being treated by ;I Rayleigh-Schrijdinger second-order perturbation. The c&Mated energies compare welt with the experi
## Abstract Spectroscopic constants of the ground and next seven lowโlying excited states of diatomic molecules CO, N~2~, P~2~, and ScF were computed using the density functional theory SAOP/ATZP model, in conjunction with timeโdependent density functional theory (TDโDFT) and a recently developed S
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