English

Linear response time-dependent density functional theory of the Hubbard dimer

Strongly Correlated Electrons 2018-07-17 v2 Materials Science

Abstract

The asymmetric Hubbard dimer is used to study the density-dependence of the exact frequency-dependent kernel of linear-response time-dependent density functional theory. The exact form of the kernel is given, and the limitations of the adiabatic approximation utilizing the exact ground-state functional are shown. The oscillator strength sum rule is proven for lattice Hamiltonians, and relative oscillator strengths are defined appropriately. The method of Casida for extracting oscillator strengths from a frequency-dependent kernel is demonstrated to yield the exact result with this kernel. An unambiguous way of labelling the nature of excitations is given. The fluctuation-dissipation theorem is proven for the ground-state exchange-correlation energy. The distinction between weak and strong correlation is shown to depend on the ratio of interaction to asymmetry. A simple interpolation between carefully defined weak-correlation and strong-correlation regimes yields a density-functional approximation for the kernel that gives accurate transition frequencies for both the single and double excitations, including charge-transfer excitations. Many exact results, limits, and expansions about those limits are given in the appendices.

Keywords

Cite

@article{arxiv.1802.09988,
  title  = {Linear response time-dependent density functional theory of the Hubbard dimer},
  author = {D. J. Carrascal and J. Ferrer and N. Maitra and K. Burke},
  journal= {arXiv preprint arXiv:1802.09988},
  year   = {2018}
}

Comments

22 pages, 14 figures

R2 v1 2026-06-23T00:35:24.024Z