Articles | Volume 17, issue 11
https://doi.org/10.5194/amt-17-3553-2024
https://doi.org/10.5194/amt-17-3553-2024
Research article
 | 
11 Jun 2024
Research article |  | 11 Jun 2024

In-flight characterization of a compact airborne quantum cascade laser absorption spectrometer

Linda Ort, Lenard Lukas Röder, Uwe Parchatka, Rainer Königstedt, Daniel Crowley, Frank Kunz, Ralf Wittkowski, Jos Lelieveld, and Horst Fischer

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Cited articles

Ba, Y. A., Wenger, C., Surleau, R., Boudon, V., Rotger, M., Daumont, L., Bonhommeau, D. A., Tyuterev, V. G., and Dubernet, M.-L.: MeCaSDa and ECaSDa: Methane and ethene calculated spectroscopic databases for the virtual atomic and molecular data centre, J. Quant. Spectrosc. Ra., 130, 62–68, https://doi.org/10.1016/j.jqsrt.2013.05.001, 2013. a
Catoire, V., Robert, C., Chartier, M., Jacquet, P., Guimbaud, C., and Krysztofiak, G.: The SPIRIT airborne instrument: a three-channel infrared absorption spectrometer with quantum cascade lasers for in situ atmospheric trace-gas measurements, Appl. Phys. B, 123, 1–12, https://doi.org/10.1007/s00340-017-6820-x, 2017. a
Crutzen, P. J. and Ehhalt, D. H.: Effects of nitrogen fertilizers and combustion on the stratospheric ozone layer, Ambio, 6, 112–117, https://www.jstor.org/stable/4312257 (last access: 18 August 2023)​​​​​​​, 1977.​​​​​​​ a
Faist, J., Capasso, F., Sivco, D. L., Sirtori, C., Hutchinson, A. L., and Cho, A. Y.: Quantum cascade laser, Science, 264, 553–556, https://doi.org/10.1126/science.264.5158.553, 1994. a
Fried, A. and Richter, D.: Infrared absorption spectroscopy, in: Analytical Techniques for Atmospheric Measurement, Wiley Online Library, 72–146, https://doi.org/10.1002/9780470988510.ch2, 2006.​​​​​​​ a, b, c, d, e
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Short summary
Airborne in situ measurements are of great importance to collect valuable data to improve our knowledge of the atmosphere but also present challenges which demand specific designs. This study presents an IR spectrometer for airborne trace-gas measurements with high data efficiency and a simple, compact design. Its in-flight performance is characterized with the help of a test flight and a comparison with another spectrometer. Moreover, results from its first campaign highlight its benefits.