In this work, the use of Quartz-Enhanced Photoacoustic Spectroscopy (QEPAS) for the detection of CO impurities in hydrogen was demonstrated. Due to the high speed of sound in hydrogen, the geometry of the spectrophone was specifically selected to ensure efficient sound wave amplification. Therefore, a QEPAS spectrophone was designed by exploiting a custom quartz tuning fork operating at first overtone mode (∼44,0 kHz) in combination with compact resonator tubes. The spectrophone was integrated into a QEPAS sensor for CO trace detection at 2193.36 cm −1 in a hydrogen matrix. The QEPAS sensor was calibrated using certified mixtures, returning a detection limit of 1.5 ppm for 10 s. Furthermore, pressure-dependent measurements enabled the determination of the effective V–T relaxation rate of CO in hydrogen, which was found to be 438 ± 80 s −1 Torr −1 . • QEPAS spectrophone optimized for trace impurity detection in hydrogen. • Custom tuning fork and resonator design accounting for high sound speed in H 2 . • Real-time CO detection in hydrogen with 1.5 ppm limit at 10 s averaging. • Pressure-dependent QEPAS analysis yields CO V–T relaxation rate in H 2 . • Guidelines for adapting QEPAS sensors to hydrogen-based energy systems.
Olivieri et al. (Wed,) studied this question.