Modelling charge self-trapping in wide-gap dielectrics: Localization problem in local density functionals
arXiv:cond-mat/0205218 · doi:10.1103/PhysRevB.67.035108
Abstract
We discuss the adiabatic self-trapping of small polarons within the density functional theory (DFT). In particular, we carried out plane-wave pseudo-potential calculations of the triplet exciton in NaCl and found no energy minimum corresponding to the self-trapped exciton (STE) contrary to the experimental evidence and previous calculations. To explore the origin of this problem we modelled the self-trapped hole in NaCl using hybrid density functionals and an embedded cluster method. Calculations show that the stability of the self-trapped state of the hole drastically depends on the amount of the exact exchange in the density functional: at less than 30% of the Hartree-Fock exchange, only delocalized hole is stable, at 50% - both delocalized and self-trapped states are stable, while further increase of exact exchange results in only the self-trapped state being stable. We argue that the main contributions to the self-trapping energy such as the kinetic energy of the localizing charge, the chemical bond formation of the di-halogen quasi molecule, and the lattice polarization, are represented incorrectly within the Kohn-Sham (KS) based approaches.
6 figures, 1 table
Cited by in corpus (12)
- Ab initio theory of polarons: formalism and applications
- The role of nitrogen related defects in high-k dielectric oxides: Density functional studies
- Efficacy of the DFT+U formalism for modeling hole polarons in perovskite oxides
- Density functional theory description of hole-trapping in SiO: a successful self-interaction-corrected approach
- Quantum Monte Carlo calculations of the structural properties and the B1-B2 phase transition of MgO
- A variational polaron self-interaction corrected total-energy functional for charge excitations in wide-band gap insulators
- Polaronic contributions to oxidation and hole conductivity in acceptor-doped BaZrO
- Disorder-induced electron and hole trapping in amorphous TiO2
- An ab initio study of intrinsic defects in zirconolite
- Ab-initio prediction of fast non-equilibrium transport of nascent polarons in SrI: A key to high-performance scintillation
- Electronic structure and optical properties of halide double perovskites from a Wannier-localized optimally-tuned screened range-separated hybrid functional
- Coupling between small polarons and ferroelectricity in BaTiO3