Publication | Open Access
Density-matrix theory of the optical dynamics and transport in quantum cascade structures: The role of coherence
62
Citations
55
References
2009
Year
Quantum DynamicQuantum Lattice SystemEngineeringNonlinear OpticsMany-body Quantum PhysicCoherenceElectron Density EvolutionOptical PropertiesQuantum EntanglementBiophysicsOptical PumpingQuantum SciencePhotonicsPhysicsNon-linear OpticDensity-matrix TheoryQuantum Cascade StructuresCoherence LeadsStationary TransportOptical DynamicsQuantum OpticNatural SciencesApplied PhysicsCondensed Matter PhysicsCoherent Process
The impact of coherence on the nonlinear optical response and stationary transport is studied in quantum cascade laser structures. Nonequilibrium effects such as the pump-probe signals, the spatiotemporally resolved electron density evolution, and the subband population dynamics (Rabi flopping) as well as the stationary current characteristics are investigated within a microscopic density-matrix approach. Focusing on the stationary current and the recently observed gain oscillations, it is found that the inclusion of coherence leads to observable coherent effects in opposite parameter regimes regarding the relation between the level broadening and the tunnel coupling across the main injection barrier. This shows that coherence plays a complementary role in stationary transport and nonlinear optical dynamics in the sense that it leads to measurable effects in opposite regimes. For this reason, a fully coherent consideration of such nonequilibrium structures is necessary to describe the combined optical and transport properties.
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