We present an implementation of energies and gradients for the ΔDFTB method, an analogue of Δ-self-consistent-field density functional theory (ΔSCF) within density-functional tight-binding, for the lowest singlet excited state of closed-shell molecules. Benchmarks of ΔDFTB excitation energies, optimized geometries, Stokes shifts, and vibrational frequencies reveal that ΔDFTB provides a qualitatively correct description of changes in molecular geometries and vibrational frequencies due to excited-state relaxation. The accuracy of ΔDFTB Stokes shifts is comparable to that of ΔSCF-DFT, and ΔDFTB performs similarly to ΔSCF with the PBE functional for vertical excitation energies of larger chromophores where the need for efficient excited-state ...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
We report a novel scheme for computing electronic excitation energies within the framework of densit...
A new formulation of time-dependent density functional tight binding (TD-DFTB) is reported in this p...
The development of variational density functional theory approaches to excited electronic states is ...
The density functional based tight binding method (DFTB) is an approximation of Kohn-Sham (KS) DFT w...
We propose a new method of calculating electronically excited states that combines a density functio...
We propose a new method of calculating electronically excited states that combines a density functio...
We propose a new method of calculating electronically excited states that combines a density functio...
We present a general approach to converge excited state solutions to any quantum chemistry orbital o...
We present a general approach to converge excited state solutions to any quantum chemistry orbital o...
This paper assesses the accuracy of the ΔSCF method for computing low-lying HOMO→LUMO transitions in...
The use of $\Delta$SCF methods has a rich history in the computational study of electronic excited s...
International audienceWe present a benchmark of the performances of the density functional tight-bin...
International audienceWe present a benchmark of the performances of the density functional tight-bin...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
We report a novel scheme for computing electronic excitation energies within the framework of densit...
A new formulation of time-dependent density functional tight binding (TD-DFTB) is reported in this p...
The development of variational density functional theory approaches to excited electronic states is ...
The density functional based tight binding method (DFTB) is an approximation of Kohn-Sham (KS) DFT w...
We propose a new method of calculating electronically excited states that combines a density functio...
We propose a new method of calculating electronically excited states that combines a density functio...
We propose a new method of calculating electronically excited states that combines a density functio...
We present a general approach to converge excited state solutions to any quantum chemistry orbital o...
We present a general approach to converge excited state solutions to any quantum chemistry orbital o...
This paper assesses the accuracy of the ΔSCF method for computing low-lying HOMO→LUMO transitions in...
The use of $\Delta$SCF methods has a rich history in the computational study of electronic excited s...
International audienceWe present a benchmark of the performances of the density functional tight-bin...
International audienceWe present a benchmark of the performances of the density functional tight-bin...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
The use of Δ-self-consistent field (SCF) approaches for studying excited electronic states has recei...
We report a novel scheme for computing electronic excitation energies within the framework of densit...