Efficient prediction of terahertz quantum cascade laser dynamics from steady-state simulations
Author(s) -
Gary Agnew,
Andrew Grier,
Thomas Taimre,
Yah Leng Lim,
M. Nikolic̀,
A. Valavanis,
Jonathan Cooper,
Paul Dean,
Suraj P. Khanna,
M. Lachab,
E. H. Linfield,
A. G. Davies,
P. Harrison,
Z. Ikonić,
D. Indjin,
Aleksandar D. Rakić
Publication year - 2015
Publication title -
applied physics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.182
H-Index - 442
eISSN - 1077-3118
pISSN - 0003-6951
DOI - 10.1063/1.4918993
Subject(s) - cascade , terahertz radiation , physics , laser , quantum cascade laser , computational physics , heat sink , quantum , semiconductor laser theory , optoelectronics , materials science , optics , chemistry , quantum mechanics , chromatography , thermodynamics
Terahertz-frequency quantum cascade lasers (THz QCLs) based on bound-to-continuum active regions are difficult to model owing to their large number of quantum states. We present a computationally efficient reduced rate equation (RE) model that reproduces the experimentally observed variation of THz power with respect to drive current and heat-sink temperature. We also present dynamic (time-domain) simulations under a range of drive currents and predict an increase in modulation bandwidth as the current approaches the peak of the light–current curve, as observed experimentally in mid-infrared QCLs. We account for temperature and bias dependence of the carrier lifetimes, gain, and injection efficiency, calculated from a full rate equation model. The temperature dependence of the simulated threshold current, emitted power, and cut-off current are thus all reproduced accurately with only one fitting parameter, the interface roughness, in the full REs. We propose that the model could therefore be used for rapid dynamical simulation of QCL designs.
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