Nonresonant Raman and inelastic x-ray scattering in the charge-density-wave phase of the spinless Falicov-Kimball model
Abstract
The dynamical mean-field theory formalism to describe nonresonant inelastic light and x-ray scattering in a charge-density-wave phase is developed and applied to the spinless Falicov-Kimball model on an infinite-dimensional hypercubic lattice at half-filling. At zero temperature, the charge gap in the density of states is exactly equal to U ; increasing the temperature rapidly fills the gap with subgap states. The nonresonant response function for Raman and inelastic x-ray scattering shows peaks connected with transitions over the gap and transitions that involve subgap states; in addition, the spectra have significant changes in shape as the temperature is raised from zero to Tc . In the case of x-ray scattering (when both energy and momentum are transferred), the response function illustrates features of dynamical screening (vertex corrections) in the different (nonresonant) symmetry channels ( A1g and B1g ); dynamical screening is also present in the A1g Raman signal. Finally, we derive and verify the first-moment sum rules for the (nonresonant) Raman and inelastic x-ray response functions in the charge-density-wave phase and we discuss experimental implications for how the sum rules might be employed in data analysis.
- Publication:
-
Physical Review B
- Pub Date:
- March 2009
- DOI:
- 10.1103/PhysRevB.79.115130
- arXiv:
- arXiv:0809.5284
- Bibcode:
- 2009PhRvB..79k5130M
- Keywords:
-
- 71.10.Fd;
- 71.45.Lr;
- 78.30.-j;
- Lattice fermion models;
- Charge-density-wave systems;
- Infrared and Raman spectra;
- Condensed Matter - Strongly Correlated Electrons
- E-Print:
- 19 pages, 17 figures