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Area of Science:

  • Computational Chemistry
  • Quantum Chemistry
  • Theoretical Chemistry

Background:

  • Range-separated density-functional theory (DFT) is used for ground-state calculations.
  • Extrapolation techniques improve convergence of calculated energies.
  • Existing methods are adapted for excited-state calculations in ensemble DFT.

Purpose of the Study:

  • To adapt Savin's extrapolation technique for ghost-interaction-corrected (GIC) range-separated ensemble DFT (eDFT) for excited states.
  • To analytically show faster convergence (μ-3) of GIC eDFT energies compared to standard methods (μ-2).
  • To improve the accuracy of excitation energies at finite range-separation parameters.

Main Methods:

  • Adaptation of Savin's extrapolation technique to GIC range-separated eDFT.
  • Analytical derivation of the convergence rate for GIC ensemble energies.
  • Application to He, H2, HeH+, and LiH systems for various excitation types.

Main Results:

  • Demonstrated faster convergence (μ-3) of GIC eDFT excited-state energies towards wavefunction theory limits.
  • Successfully applied the adapted extrapolation method to small atomic and molecular systems.
  • Analyzed potential energy profiles and avoided crossings for singlet Σ+ excitations in HeH+ and H2.

Conclusions:

  • The adapted extrapolation method provides a more efficient route to accurate excited-state energies in GIC range-separated eDFT.
  • Faster convergence allows for improved accuracy at practical, smaller values of the range-separation parameter.
  • Future work may involve extracting individual state energies from ensemble calculations.