Optimization of broad gain and high optical nonlinearity of mid-infrared quantum cascade laser frequency combs
Martin Franckie

TL;DR
This paper presents optimized mid-infrared quantum cascade laser designs with broad, flat gain spectra and enhanced four-wave mixing nonlinearity, aiming to significantly improve comb bandwidth for advanced molecular spectroscopy applications.
Contribution
The work introduces novel QCL designs with up to 220 cm$^{-1}$ bandwidth and 30 times stronger nonlinearity, utilizing a nonequilibrium Green's function model for optimization.
Findings
Achieved broad, flat gain spectra spanning 220 cm$^{-1}$.
Enhanced four-wave mixing nonlinearity by up to 30 times.
Potential for non-classical light generation and improved spectroscopy.
Abstract
Mid-infrared Quantum Cascade Lasers (QCLs) are compact and efficient sources ideal for molecular spectroscopy applications, such as dual-comb spectroscopy. However, despite over a decade of active developments of QCL frequency comb devices, their bandwidth is limited to around cm, severely limiting their application for multi-gas, liquid, and solid sensing. Even though very broad gain QCLs have been presented, these were not able to improve the comb bandwidth, whose main limitations are variations of the gain and dispersion with frequency. A perfectly flat gain spectrum would mitigate this, as the dispersion as well as the parametric gain necessary to overcome the losses at gain clamping, vanishes. On the other hand, comb formation rests on four-wave mixing, a third-order nonlinear process, which is very strong in QCLs. Due to the subband nature of these devices, this…
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Taxonomy
TopicsSpectroscopy and Laser Applications · Laser Design and Applications · Advanced Fiber Laser Technologies
