Conventional continuum exchange-correlation functionals (e.g., local density approximation, generalized gradient approximation) offer a poor description of many response properties, such as static polarizabilities and single photon vertical excitation energies to Rydberg states. These deficiencies are related to errors in the virtual Kohn–Sham orbitals and eigenvalues, which arise due to a fundamental deficiency in the potentials of conventional continuum functionals. Namely, although these potentials approximately average over the exact integer discontinuity in energetically important regions, they fail to do so asymptotically, because they vanish. Our recent functional HCTH [J. Chem. Phys. 109, 6264 (1998)] was designed with this deficiency in mind, although its potential still fails to exhibit the appropriate asymptotic form. In this paper, we present a new procedure that explicitly corrects this asymptotic deficiency for any continuum functional. Self-consistent Kohn–Sham calculations are performed using a corrected potential, which equals the conventional potential in energetically important regions, but which asymptotically behaves in the required average manner The quantity is determined using a nonlocal expression; is an approximate spin ionization potential; and is the highest occupied spin eigenvalue. By applying this correction to the HCTH potential, we accurately reproduce the hydrogen atom eigenvalue spectrum, without significantly changing the total energy. We determine corrected orbitals and eigenvalues for a variety of molecules, and use them to compute excitation energies and static polarizabilities. We compare the results with those from a variety of other exchange-correlation functionals. Excitations to Rydberg states are determined as accurately as those to valence states; for CO, and mean absolute errors are less than 0.35 eV. The static isotropic polarizabilities of 14 small molecules are of MP2 quality.
Skip Nav Destination
Article navigation
15 December 1998
Research Article|
December 15 1998
Improving virtual Kohn–Sham orbitals and eigenvalues: Application to excitation energies and static polarizabilities
David J. Tozer;
David J. Tozer
Department of Chemistry, University of Cambridge, Cambridge, CB2 1EW, United Kingdom
Search for other works by this author on:
Nicholas C. Handy
Nicholas C. Handy
Department of Chemistry, University of Cambridge, Cambridge, CB2 1EW, United Kingdom
Search for other works by this author on:
J. Chem. Phys. 109, 10180–10189 (1998)
Article history
Received:
August 11 1998
Accepted:
September 04 1998
Citation
David J. Tozer, Nicholas C. Handy; Improving virtual Kohn–Sham orbitals and eigenvalues: Application to excitation energies and static polarizabilities. J. Chem. Phys. 15 December 1998; 109 (23): 10180–10189. https://doi.org/10.1063/1.477711
Download citation file:
Pay-Per-View Access
$40.00
Sign In
You could not be signed in. Please check your credentials and make sure you have an active account and try again.
Citing articles via
DeePMD-kit v2: A software package for deep potential models
Jinzhe Zeng, Duo Zhang, et al.
CREST—A program for the exploration of low-energy molecular chemical space
Philipp Pracht, Stefan Grimme, et al.
Rubber wear: Experiment and theory
B. N. J. Persson, R. Xu, et al.
Related Content
New generalized gradient approximation functionals
J. Chem. Phys. (January 2000)
Development and assessment of new exchange-correlation functionals
J. Chem. Phys. (October 1998)
The asymptotic exchange potential in Kohn–Sham theory
J. Chem. Phys. (February 2000)
Accurate excitation energies from time-dependent density functional theory: Assessing the PBE0 model
J. Chem. Phys. (August 1999)