Modeling of fluctuations in dynamical optoelectronic device simulations within a Maxwell-density matrix Langevin approach

Author:

Popp Johannes1ORCID,Stowasser Johannes1ORCID,Schreiber Michael A.1ORCID,Seitner Lukas1ORCID,Hitzelhammer Felix2ORCID,Haider Michael1ORCID,Slavcheva Gabriela23ORCID,Jirauschek Christian14ORCID

Affiliation:

1. TUM School of Computation, Information and Technology, Technical University of Munich 1 , 85748 Garching, Germany

2. Institute of Physics, NAWI Graz, University of Graz 2 , Universitätsplatz 5, 8010 Graz, Austria

3. Quantopticon 3 , 5235 South Harper Court, Chicago, Illinois 60615, USA

4. TUM Center for Quantum Engineering (ZQE) 4 , 85748 Garching, Germany

Abstract

We present a full-wave Maxwell-density matrix simulation tool including c-number stochastic noise terms for the modeling of the spatiotemporal dynamics in active photonic devices, such as quantum cascade lasers and quantum dot structures. The coherent light–matter interaction in such devices plays an important role in the generation of frequency combs and other nonlinear and non-classical optical phenomena. Since the emergence of nonlinear and non-classical features is directly linked to the noise properties, detailed simulations of the noise characteristics are required for the development of low-noise quantum optoelectronic sources. Our semiclassical simulation framework is based on the Lindblad equation for the electron dynamics, coupled with Maxwell’s equations for optical propagation in the laser waveguide. Fluctuations arising from the interactions of the optical field and quantum system with their reservoirs are treated within the quantum Langevin theory. Here, the fluctuations are included by adding stochastic c-number terms to the Maxwell-density matrix equations. The implementation in the mbsolve dynamic simulation framework is publicly available.

Funder

QuantERA

Horizon 2020 Framework Program

Deutsche Forschungsgemeinschaft

Austrian Science Fund

European Space Agency

Publisher

AIP Publishing

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