arXiv · 2110.07937
Non-equilibrium evolution of the optical conductivity of the weakly interacting Hubbard model: Drude response and $π$-ton type vertex corrections
Abstract
The optical conductivity contains information about energy absorption and the underlying physical processes. In finite-dimensional systems, vertex corrections to the bare bubble need to be considered, which is a computationally challenging task. Recent numerical studies showed that in the weak coupling limit, near an ordering instability with wave vector $π$, $π$-tons (or Maki-Thompson diagrams) yield the most relevant vertex corrections. This provides a route for including vertex corrections into, for example, dynamical mean field theory estimates of the optical conductivity. By implementing calculations on the Kadanoff-Baym contour, we reveal the characteristic spectral signatures of the $π$-tons and their evolution under non-equilibrium conditions. We consider interaction quenches of the weakly-correlated Hubbard model near the antiferromagnetic phase boundary, and analyze the evolution of the Drude and $π$-ton features. While the bubble contribution to the optical conductivity is found to thermalize rapidly, after some oscillations with frequencies related to the local spectral function, the $π$-ton contribution exhibits a slower evolution. We link this observation to the prethermalization phenomenon which has been previously studied in weakly interacting, quenched Hubbard models.
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Olivier Simard, Martin Eckstein, Philipp Werner. 2021-12-21. Non-equilibrium evolution of the optical conductivity of the weakly interacting Hubbard model: Drude response and $π$-ton type vertex corrections. https://doi.org/10.1103/physrevb.104.245127
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