Paper
25 October 2006 Probing the electronic and optical properties of quantum cascade lasers under operating conditions
Author Affiliations +
Proceedings Volume 6386, Optical Methods in the Life Sciences; 63860H (2006) https://doi.org/10.1117/12.692334
Event: Optics East 2006, 2006, Boston, Massachusetts, United States
Abstract
We report the realisation of spectroscopic broadband transmission experiments on quantum cascade lasers (QCLs) under continuous wave operating conditions for drive currents up to laser threshold. This technique allows, for the first time, spectroscopic study of light transmission through the waveguide of QCLs in a very broad spectral range (λ~1.5-12 μm), limited only by the detector response and by interband absorption in the materials used in the QCL cladding regions. Waveguide transmittance spectra have been studied for both TE and TM polarization, for InGaAs/InAlAs/InP QCLs with different active region designs emitting at 7.4 and 10μm. The transmission measurements clearly show the depopulation of the lower laser levels as bias is increased, the onset and growth of optical amplification at the energy corresponding to the laser transitions as current is increased towards threshold, and the thermal filling of the second laser level and decrease of material gain at high temperatures. This technique also allows direct determination of key parameters such as the exact temperature of the laser core region under operating conditions, as well as the modal gain and waveguide loss coefficients.
© (2006) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
D. G. Revin, M. R. Soulby, J. W. Cockburn, A. B. Krysa, J. S. Roberts, R. J. Airey, R. Nelander, M. F. Pereira, and A. Wacker "Probing the electronic and optical properties of quantum cascade lasers under operating conditions", Proc. SPIE 6386, Optical Methods in the Life Sciences, 63860H (25 October 2006); https://doi.org/10.1117/12.692334
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KEYWORDS
Quantum cascade lasers

Absorption

Waveguides

Electrons

Laser damage threshold

Polarization

Transmittance

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