Résumé
This work presents a single-pass optical sensor designed for the detection of a broadband absorption feature of benzene. It is based on light-induced thermoelastic absorption spectroscopy (LITES) employing a novel InAs/AlSb-based quantum cascade laser source emitting at 14.85 μm as light source, and a custom-designed quartz tuning fork (QTF) as infrared photodetector. The sensor system was operated in both amplitude (AM) and wavelength modulation (WM) mode to characterize the absorption band parameters and assess the sensor ultimate detection limit. The limitations of WM and double-frequency detection (2f-WM) approach for broadband absorption features are thoroughly analyzed and discussed. An absorption cross-section of (1.1 ± 0.1) · 10 cm2 was measured in AM mode with a minimum detection limit of 1.6 part-per-million, while a minimum detection limit of 0.6 part-per-million was achieved using the 2f-WM mode, at 0.1 s of integration time, employing a 12 cm long single-pass cell.
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•Single-pass optical sensor developed for broadband absorption feature detection.•A novel QCL emitting at 14.85 μm employed as light source for benzene detection.•A custom quartz tuning fork acts as sensitive IR detector in LITES configuration.•LITES Sensor operated in AM and WM modes to evaluate the ultimate detection limit.