Impact ionization processes in the steady state of a driven Mott insulating layer coupled to metallic leads
arXiv:1708.05011 · doi:10.1103/PhysRevB.97.115113
Abstract
We study a simple model of photovoltaic energy harvesting across a Mott insulating gap consisting of a correlated layer connected to two metallic leads held at different chemical potentials. Upon driving the layer with a time periodic electric field a particle current is induced from the low-energy to the high-energy lead. We address in particular the issue of impact ionization, whereby a particle photoexcited to the high-energy part of the upper Hubbard band uses its extra energy to produce a second particle-hole excitation. We find a drastic increase of the photocurrent upon entering the frequency regime where impact ionization is possible. At large values of the Mott gap, where impact ionization is energetically not allowed, we observe a suppression of the current and a piling up of charge in the high-energy part of the upper Hubbard band. Our study is based on a Floquet-DMFT treatment with the so-called auxiliary master equation approach as impurity solver. We verify that an approximation, whereby the self-energy is taken diagonal in the Floquet indices, is appropriate for the parameter range we are considering.
11 pages, 8 figures. Comments and suggestions welcome!
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- Photo-enhanced excitonic correlations in a Mott insulator with nonlocal interactions
- Behavior of Floquet Topological Quantum States in Optically Driven Semiconductors
- Enhancement of impact ionization in Hubbard clusters by disorder and next-nearest-neighbor hopping
- Correlated Mott insulators in strong electric fields: Role of phonons in heat dissipation
- Impact ionization processes in a photodriven Mott insulator: influence of phononic dissipation
- Charge redistribution in correlated heterostuctures within nonequilibrium real-space dynamical mean-field theory
- Impact ionization and multiple photon absorptions in the two-dimensional photoexcited Hubbard model
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- Impact of disorder and phonons on the Hubbard bands of Mott insulators in strong electric fields
- Photodriven Mott insulating heterostructures: A steady-state study of impact ionization processes
- Iterated Perturbation Theory for Mott Insulators in a Static Electric Field with Optical Phonons