Consequences of local gauge symmetry in empirical tight-binding theory
arXiv:cond-mat/0204456 · doi:10.1103/PhysRevB.66.165212
Abstract
A method for incorporating electromagnetic fields into empirical tight-binding theory is derived from the principle of local gauge symmetry. Gauge invariance is shown to be incompatible with empirical tight-binding theory unless a representation exists in which the coordinate operator is diagonal. The present approach takes this basis as fundamental and uses group theory to construct symmetrized linear combinations of discrete coordinate eigenkets. This produces orthogonal atomic-like "orbitals" that may be used as a tight-binding basis. The coordinate matrix in the latter basis includes intra-atomic matrix elements between different orbitals on the same atom. Lattice gauge theory is then used to define discrete electromagnetic fields and their interaction with electrons. Local gauge symmetry is shown to impose strong restrictions limiting the range of the Hamiltonian in the coordinate basis. The theory is applied to the semiconductors Ge and Si, for which it is shown that a basis of 15 orbitals per atom provides a satisfactory description of the valence bands and the lowest conduction bands. Calculations of the dielectric function demonstrate that this model yields an accurate joint density of states, but underestimates the oscillator strength by about 20% in comparison to a nonlocal empirical pseudopotential calculation.
23 pages, 7 figures, RevTeX4; submitted to Phys. Rev. B
References in corpus (2)
Cited by in corpus (23)
- Nonequilibrium dynamical mean-field theory and its applications
- Unraveling the "Green Gap" problem: The role of random alloy fluctuations in InGaN/GaN light emitting diodes
- High-harmonic generation in solids with and without topological edge states
- Dynamics of Berry-phase polarization in time-dependent electric fields
- Symmetry, distorted bandstructure, and spin-orbit coupling of (group-III) metal-monochalcogenide monolayers
- Systematic analysis method for nonlinear response tensors
- Gauge invariance of light-matter interactions in first-principle tight-binding models
- Magneto-optical response of CdSe nanostructures
- Optical matrix elements in tight-binding models with overlap
- Assessing the role of interatomic position matrix elements in tight-binding calculations of optical properties
- Momentum-resolved spin splitting in Mn-doped trivial CdTe and topological HgTe semiconductors
- The Wannier Function Software Ecosystem for Materials Simulations
- Hund excitations and the efficiency of Mott solar cells
- Microscopic Electronic Wavefunction and interactions between quasi particles in Empirical Tight-Binding Theory
- Tight binding formulation of the dielectric response in semiconductor nanocrystals
- First-principles modelling for time-resolved ARPES under different pump-probe conditions
- Exact solution for Bloch oscillations of a simple charge-density-wave insulator
- Shift photoconductivity in the Haldane model
- Superconducting Gaps via Raman Scattering in Iron Superconductors
- Aharonov-Bohm Oscillation and Chirality Effect in Optical Activity of Single Wall Carbon Nanotubes
- Renormalization of Optical Transition Strengths in Semiconductor Nanoparticles due to Band Mixing
- Theory of subcycle time-resolved photoemission: application to terahertz photodressing in graphene
- Magnetotransport of Functional Oxide Heterostructures Affected by Spin-Orbit Coupling: A Tale of Two-Dimensional Systems