Affiliation:
1. Danish Fundamental Metrology, Kogle Allé 5, 2970 Hørsholm, Denmark
Abstract
We report on the use of quartz-enhanced photoacoustic spectroscopy (QEPAS) for multi-gas detection. Photoacoustic (PA) spectra of mixtures of water (H2O), ammonia (NH3), and methane (CH4) were measured in the mid-infrared (MIR) wavelength range using a mid-infrared (MIR) optical parametric oscillator (OPO) light source. Highly overlapping absorption spectra are a common challenge for gas spectroscopy. To mitigate this, we used a partial least-squares regression (PLS) method to estimate the mixing ratio and concentrations of the individual gasses. The concentration range explored in the analysis varies from a few parts per million (ppm) to thousands of ppm. Spectra obtained from HITRAN and experimental single-molecule reference spectra of each of the molecular species were acquired and used as training data sets. These spectra were used to generate simulated spectra of the gas mixtures (linear combinations of the reference spectra). Here, in this proof-of-concept experiment, we demonstrate that after an absolute calibration of the QEPAS cell, the PLS analyses could be used to determine concentrations of single molecular species with a relative accuracy within a few % for mixtures of H2O, NH3, and CH4 and with an absolute sensitivity of approximately 300 (±50) ppm/V, 50 (±5) ppm/V, and 5 (±2) ppm/V for water, ammonia, and methane, respectively. This demonstrates that QEPAS assisted by PLS is a powerful approach to estimate concentrations of individual gas components with considerable spectral overlap, which is a typical scenario for real-life adoptions and applications.
Funder
the Innovation Fund Denmark
the Danish Agency for Institutions and Educational Grants
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference43 articles.
1. Backscatter 2-μm Lidar Validation for Atomospheric CO2 Differential Absorption Lidar Applications;Refaat;IEEE Trans. Geosci. Remote Sens.,2011
2. Feng, S., Farha, F., Li, Q., Wan, Y., Xu, Y., Zhang, T., and Ning, H. (2019). Review on Smart Gas Sensing Technology. Sensors, 19.
3. Nazemi, H., Joseph, A., Park, J., and Emadi, A. (2019). Advanced Micro- and Nano-Gas Sensor Technology: A Review. Sensors, 19.
4. Applications of breath gas analysis in medicine;Amann;Int. J. Mass Spectrom.,2004
5. Photo-acoustic sensor for detection of oil contamination in compressed air systems;Lassen;Opt. Express,2017