The semiempirical orthogonalization-corrected OMx methods have recently been shown to perform well in extensive ground-state benchmarks. They can also be applied to the computation of electronically excited states when combined with a suitable multireference configuration interaction (MRCI) treatment. We report on a comprehensive evaluation of the performance of the OMx/MRCI methods for electronically excited states. The present benchmarks cover vertical excitation energies, excited-state equilibrium geometries (including an analysis of significant changes between ground- and excited-state geometries), minimum-energy conical intersections, ground- and excited-state zero-point vibrational energies, and 0–0 transition energies for a total of ...
In the present work, we report an efficient implementation of configuration interaction singles (CIS...
We introduce and benchmark a new systematically improvable route for excited-state calculations, sta...
After a general introduction on excited states in molecular systems and computational resources (Cha...
The semiempirical orthogonalization-corrected OMx methods have recently been shown to perform well i...
The semiempirical orthogonalization-corrected OMx methods (OM1, OM2, and OM3) go beyond the standard...
We present two new semiempirical quantum-chemical methods with orthogonalization and dispersion corr...
The semiempirical orthogonalization-corrected OM<i>x</i> methods (OM1, OM2, and OM3) go beyond the s...
The semiempirical methods of quantum chemistry are reviewed, with emphasis on established neglect of...
Semiempirical orthogonalization-corrected methods (OM1, OM2, and OM3) go beyond the standard MNDO mo...
We present an efficient implementation of configuration interaction with single excitations (CIS) fo...
We present two new semiempirical quantum-chemical methods with orthogonalization and dispersion corr...
The semiempirical methods of the OMx family (orthogonalization models OM1, OM2, and OM3) are known t...
We present two new modifications of the second-order polarization propagator approximation (SOPPA), ...
We investigate possible improvements in the accuracy of semiempirical quantum chemistry (SQC) method...
11 pages, 3 figures, Perspective review (supporting material available)We provide an overview of the...
In the present work, we report an efficient implementation of configuration interaction singles (CIS...
We introduce and benchmark a new systematically improvable route for excited-state calculations, sta...
After a general introduction on excited states in molecular systems and computational resources (Cha...
The semiempirical orthogonalization-corrected OMx methods have recently been shown to perform well i...
The semiempirical orthogonalization-corrected OMx methods (OM1, OM2, and OM3) go beyond the standard...
We present two new semiempirical quantum-chemical methods with orthogonalization and dispersion corr...
The semiempirical orthogonalization-corrected OM<i>x</i> methods (OM1, OM2, and OM3) go beyond the s...
The semiempirical methods of quantum chemistry are reviewed, with emphasis on established neglect of...
Semiempirical orthogonalization-corrected methods (OM1, OM2, and OM3) go beyond the standard MNDO mo...
We present an efficient implementation of configuration interaction with single excitations (CIS) fo...
We present two new semiempirical quantum-chemical methods with orthogonalization and dispersion corr...
The semiempirical methods of the OMx family (orthogonalization models OM1, OM2, and OM3) are known t...
We present two new modifications of the second-order polarization propagator approximation (SOPPA), ...
We investigate possible improvements in the accuracy of semiempirical quantum chemistry (SQC) method...
11 pages, 3 figures, Perspective review (supporting material available)We provide an overview of the...
In the present work, we report an efficient implementation of configuration interaction singles (CIS...
We introduce and benchmark a new systematically improvable route for excited-state calculations, sta...
After a general introduction on excited states in molecular systems and computational resources (Cha...