Abstract
We report the development of a dual-gas Quartz-Enhanced Photoacoustic Spectroscopy (QEPAS) sensor operating in the mid-infrared range for the simultaneous detection of 12CH4 and 13CH4. The sensor employs a frequency-modulated multiplexing scheme using two distributed-feedback quantum cascade lasers to independently excite the fundamental (fo) and overtone (f1) vibrational modes of a quartz tuning fork coupled with resonator tubes. The f0-demodulated signal is dedicated to monitoring 12CH4, while the f1-demodulated signal selectively quantifies 13CH4, enabling the analysis of the isotopic composition of methane samples. Calibration measurements demonstrated a linear response of the QEPAS signal to varying 13CH4 concentrations in CH4-based samples diluted in N2, with a precision of 1‰ in detecting isotopic delta ratio variations for 1% CH4 mixtures at 0.8 s integration time. The proposed system is suitable for real-time, high-precision isotopic methane sensing aimed at applications such as environmental monitoring, geochemical tracing, and industrial process control.
Author supplied keywords
Cite
CITATION STYLE
Olivieri, M., Elefante, A., Menduni, G., Giglio, M., Wu, H., Dong, L., … Sampaolo, A. (2026). Simultaneous Detection of12CH4,13CH4, and Related Isotope Ratio Exploiting a Frequency-Multiplexed Mid-Infrared Quartz-Enhanced Photoacoustic Sensor. ACS Sensors, 11(1), 247–256. https://doi.org/10.1021/acssensors.5c02871
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.