Numerically efficient density-matrix technique for modeling electronic transport in midinfrared quantum cascade lasers
S. Soleimanikahnoj, O. Jonasson, F. Karimi, and I. Knezevic

TL;DR
This paper introduces a numerically efficient density-matrix model for midinfrared quantum cascade lasers that accurately predicts experimental results and outperforms semiclassical models by including quantum coherence effects.
Contribution
The paper develops a new density-matrix model that is computationally efficient, includes in-plane dynamics, and accurately models quantum cascade lasers without phenomenological dephasing times.
Findings
Model agrees with experimental data up to threshold
Capable of reproducing nonequilibrium Green's function results
Semiclassical model overestimates threshold current density
Abstract
We present a numerically efficient density-matrix model applicable to midinfrared quantum cascade lasers. The model is based on a Markovian master equation for the density matrix that includes in-plane dynamics, preserves positivity of the density matrix and does not rely on phenomenologically introduced dephasing times. Nonparabolicity in the bandstructure is accounted for with a three-band k.p model, which includes the conduction, light-hole, and spin-orbit split-off bands. We compare the model to experimental results for QCLs based on lattice-matched as well as strain-balanced InGaAs/InAlAs heterostructures grown on InP. We find that our density-matrix model is in quantitative agreement with experiment up to threshold and is capable of reproducing results obtained using the more computationally expensive nonequilibrium Green's function formalism. We compare our density-matrix model…
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Taxonomy
TopicsSpectroscopy and Laser Applications · Atmospheric Ozone and Climate · Atmospheric and Environmental Gas Dynamics
