Current-dependent exchange-correlation potential for non-local absorption in quantum hydrodynamic theory
arXiv:1607.06236 · doi:10.1103/PhysRevB.95.245434
Abstract
The quantum hydrodynamic theory is a promising method for describing microscopic details of macroscopic systems. The hydrodynamic equation can be directly obtained from a single particle Kohn-Sham equation that includes the contribution of an external vector potential. This derivation allows to straightforwardly incorporate in the hydrodynamic equation an exchange-correlation viscoelastic term, so that broadening of collective excitation can be taken into account, as well as a correction to the plasmon dispersion. The result is an accurate self-consistent and computationally efficient hydrodynamic description of the free electron gas. A very accurate agreement with full quantum calculations is shown.
References in corpus (5)
- Nonlocal optical response in metallic nanostructures
- Resonance shifts and spill-out effects in self-consistent hydrodynamic nanoplasmonics
- Quantum Hydrodynamic Theory for Plasmonics: Impact of the Electron Density Tail
- Laplacian-level kinetic energy approximations based on the fourth-order gradient expansion: Global assessment and application to the subsystem formulation of density functional theory
- Quantum plasmonics: An energy perspective to quantify nonclassical effects
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