An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O
Abstract
1. Introduction
State of the Art
2. Materials and Methods
2.1. Spectral Range
2.2. Absorption Spectroscopy
2.3. Basic Principles of the sWMS Technique
2.4. TDLAS Spectra Processing
2.5. Instrument Design
2.5.1. Optics
2.5.2. Electronics
3. Results
3.1. E-CAHORS Prototype Calibration in the Vacuum Chamber
3.2. Instrument Precision Characterization
3.3. Field Measurements
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| ADC | Analog-to-digital converter |
| DAC | Digital-to-analog converter |
| EC | Eddy covariance |
| FPGA | Field programmable gate arrays |
| ICL | Interband cascade laser |
| LDR | Low-dropout regulators |
| MCU | Microcontroller |
| NDIR | Non-dispersive infrared |
| PD | Photodiode |
| PCB | Printed circuit board |
| SNR | Signal-to-noise ratio |
| sWMS | Simplified wavelength modulation spectroscopy |
| TDLAS | Tunable diode laser absorption spectroscopy |
| WMS | Wavelength modulation spectroscopy |
References
- Glacken, C.J. Traces on the Rhodian Shore: Nature and Culture in Western Thought from Ancient Times to the End of the Eighteenth Century; University of California Press: Berkeley, CA, USA, 1996; ISBN 978-0-520-02367-3. [Google Scholar]
- Fourier, J. Mémoire Sur Les Températures Du Globe Terrestre et Des Espaces Planétaires. In Mémoires de l’Académie Royale des Sciences de l’Institut de France; Firmin Didot: Paris, France, 1827; Volume 7, pp. 570–604. [Google Scholar]
- Christianson, G.E. Historical Perspectives on Climate Change. Environ. Hist. 2000, 5, 577–578. [Google Scholar] [CrossRef]
- Tyndall, J. On the Transmission of Heat of Different Qualities through Gases of Different Kinds. Proc. R. Inst. 1859, 3, 155–158. [Google Scholar]
- Callendar, G.S. The Artificial Production of Carbon Dioxide and Its Influence on Temperature. Q. J. R. Meteorol. Soc. 1938, 64, 223–240. [Google Scholar] [CrossRef]
- Burba, G.G.; Anderson, D.J. A Brief Practical Guide to Eddy Covariance Flux Measurements: Principles and Workflow Examples for Scientific and Industrial Applications; LI-COR Biosciences: Lincoln, Nebraska, 2010; ISBN 0615430139. [Google Scholar]
- Schmid, H.P. Source Areas for Scalars and Scalar Fluxes. Bound.-Layer Meteorol. 1994, 67, 293–318. [Google Scholar] [CrossRef]
- Burba, G. Eddy Covariance Method: For Scientific, Regulatory, and Commercial Applications; Updated and Expanded 2022 Edition; LI-COR Biosciences: Lincoln, Nebraska, 2022; ISBN 978-0-578-97714-0. [Google Scholar]
- Burba, G.; Schmidt, A.; Scott, R.L.; Nakai, T.; Kathilankal, J.; Fratini, G.; Hanson, C.; Law, B.; McDermitt, D.K.; Eckles, R.; et al. Calculating CO2 and H2O Eddy Covariance Fluxes from an Enclosed Gas Analyzer Using an Instantaneous Mixing Ratio. Glob. Change Biol. 2012, 18, 385–399. [Google Scholar] [CrossRef]
- Polonik, P.; Chan, W.S.; Billesbach, D.P.; Burba, G.; Li, J.; Nottrott, A.; Bogoev, I.; Conrad, B.; Biraud, S.C. Comparison of Gas Analyzers for Eddy Covariance: Effects of Analyzer Type and Spectral Corrections on Fluxes. Agric. For. Meteorol. 2019, 272–273, 128–142. [Google Scholar] [CrossRef]
- Burba, G.G.; McDERMITT, D.K.; Grelle, A.; Anderson, D.J.; Xu, L. Addressing the Influence of Instrument Surface Heat Exchange on the Measurements of CO2 Flux from Open-path Gas Analyzers. Glob. Change Biol. 2008, 14, 1854–1876. [Google Scholar] [CrossRef]
- Haslwanter, A.; Hammerle, A.; Wohlfahrt, G. Open-Path vs. Closed-Path Eddy Covariance Measurements of the Net Ecosystem Carbon Dioxide and Water Vapour Exchange: A Long-Term Perspective. Agric. For. Meteorol. 2009, 149, 291–302. [Google Scholar] [CrossRef] [PubMed]
- Detto, M.; Verfaillie, J.; Anderson, F.; Xu, L.; Baldocchi, D. Comparing Laser-Based Open- and Closed-Path Gas Analyzers to Measure Methane Fluxes Using the Eddy Covariance Method. Agric. For. Meteorol. 2011, 151, 1312–1324. [Google Scholar] [CrossRef]
- McDermitt, D.K.; Welles, J.M.; Eckles, R.D. Effects of Temperature, Pressure and Water Vapor on Gas Phase Infrared Absorption by CO2, 1st ed.; LI-COR Technical Publication: Lincoln, NE, USA, 1993; Volume 116. [Google Scholar]
- Burba, G.G.; McDermitt, D.K.; Anderson, D.J.; Furtaw, M.D.; Eckles, R.D. Novel Design of an Enclosed CO2/H2O Gas Analyser for Eddy Covariance Flux Measurements. Tellus B Chem. Phys. Meteorol. 2010, 62, 743–748. [Google Scholar] [CrossRef]
- Herriott, D.; Kogelnik, H.; Kompfner, R. Off-Axis Paths in Spherical Mirror Interferometers. Appl. Opt. 1964, 3, 523–526. [Google Scholar] [CrossRef]
- McDermitt, D.; Burba, G.; Xu, L.; Anderson, T.; Komissarov, A.; Riensche, B.; Schedlbauer, J.; Starr, G.; Zona, D.; Oechel, W.; et al. A New Low-Power, Open-Path Instrument for Measuring Methane Flux by Eddy Covariance. Appl. Phys. B 2011, 102, 391–405. [Google Scholar] [CrossRef]
- Olson, M.L.; Grieble, D.L.; Griffiths, P.R. Second Derivative Tunable Diode Laser Spectrometry for Line Profile Determination I. Theory. Appl. Spectrosc. 1980, 34, 50–56. [Google Scholar] [CrossRef]
- Li, M.; Kan, R.; He, Y.; Liu, J.; Xu, Z.; Chen, B.; Yao, L.; Ruan, J.; Xia, H.; Deng, H.; et al. Development of a Laser Gas Analyzer for Fast CO2 and H2O Flux Measurements Utilizing Derivative Absorption Spectroscopy at a 100 Hz Data Rate. Sensors 2021, 21, 3392. [Google Scholar] [CrossRef]
- Li, X.; Yuan, F.; Hu, M.; Chen, B.; He, Y.; Yang, C.; Shi, L.; Kan, R. Compact Open-Path Sensor for Fast Measurements of CO2 and H2O Using Scanned-Wavelength Modulation Spectroscopy with 1f-Phase Method. Sensors 2020, 20, 1910. [Google Scholar] [CrossRef] [PubMed]
- Gu, M.; Chen, J.; Mei, J.; Tan, T.; Wang, G.; Liu, K.; Liu, G.; Gao, X. Open-Path Anti-Pollution Multi-Pass Cell-Based TDLAS Sensor for the Online Measurement of Atmospheric H2O and CO2 Fluxes. Opt. Express 2022, 30, 43961–43972. [Google Scholar] [CrossRef] [PubMed]
- Horst, T.W.; Vogt, R.; Oncley, S.P. Measurements of Flow Distortion within the IRGASON Integrated Sonic Anemometer and CO2/H2O Gas Analyzer. Bound.-Layer Meteorol. 2016, 160, 1–15. [Google Scholar] [CrossRef]
- Ma, J.; Zha, T.; Jia, X.; Sargent, S.; Burgon, R.; Bourque, C.P.-A.; Zhou, X.; Liu, P.; Bai, Y.; Wu, Y. An Eddy-Covariance System with an Innovative Vortex Intake for Measuring Carbon Dioxide and Water Fluxes of Ecosystems. Atmos. Meas. Tech. 2017, 10, 1259–1267. [Google Scholar] [CrossRef]
- Wang, K.; Kang, P.; Lu, Y.; Zheng, X.; Liu, M.; Lin, T.-J.; Butterbach-Bahl, K.; Wang, Y. An Open-Path Ammonia Analyzer for Eddy Covariance Flux Measurement. Agric. For. Meteorol. 2021, 308–309, 108570. [Google Scholar] [CrossRef]
- Wang, K.; Wang, J.; Qu, Z.; Xu, W.; Wang, K.; Zhang, H.; Shen, J.; Kang, P.; Zhen, X.; Wang, Y.; et al. A Significant Diurnal Pattern of Ammonia Dry Deposition to a Cropland Is Detected by an Open-Path Quantum Cascade Laser-Based Eddy Covariance Instrument. Atmos. Environ. 2022, 278, 119070. [Google Scholar] [CrossRef]
- Baer, D.S.; Paul, J.B.; Gupta, M.; O’Keefe, A. Sensitive Absorption Measurements in the Near-Infrared Region Using off-Axis Integrated-Cavity-Output Spectroscopy. Appl. Phys. B Lasers Opt. 2002, 75, 261–265. [Google Scholar] [CrossRef]
- Tuzson, B.; Hiller, R.V.; Zeyer, K.; Eugster, W.; Neftel, A.; Ammann, C.; Emmenegger, L. Field Intercomparison of Two Optical Analyzers for CH4 Eddy Covariance Flux Measurements. Atmospheric Meas. Tech. 2010, 3, 1519–1531. [Google Scholar] [CrossRef]
- Crosson, E.R. A Cavity Ring-down Analyzer for Measuring Atmospheric Levels of Methane, Carbon Dioxide, and Water Vapor. Appl. Phys. B 2008, 92, 403–408. [Google Scholar] [CrossRef]
- Chernin, S.M.; Barskaya, E.G. Optical Multipass Matrix Systems. Appl. Opt. 1991, 30, 51–58. [Google Scholar] [CrossRef]
- Chernin, S.M. Multipass Annular Mirror System for Spectroscopic Studies in Shock Tubes. J. Mod. Opt. 2004, 51, 223–231. [Google Scholar] [CrossRef]
- Voigt, W. Über das Gesetz der Intensitätsverteilung innerhalb der Linien eines Gasspektrums; Sitzungsberichte der, K.B., Ed.; Akademie der Wissenschaften: München, Germany, 1912; Volume 3, pp. 603–620. [Google Scholar]
- Gordon, I.E.; Rothman, L.S.; Hargreaves, R.J.; Hashemi, R.; Karlovets, E.V.; Skinner, F.M.; Conway, E.K.; Hill, C.; Kochanov, R.V.; Tan, Y.; et al. The HITRAN2020 Molecular Spectroscopic Database. J. Quant. Spectrosc. Radiat. Transf. 2022, 277, 107949. [Google Scholar] [CrossRef]
- Bjorklund, G.C. Frequency-Modulation Spectroscopy: A New Method for Measuring Weak Absorptions and Dispersions. Opt. Lett. 1980, 5, 15–17. [Google Scholar] [CrossRef] [PubMed]
- Werle, P. A Review of Recent Advances in Semiconductor Laser Based Gas Monitors. Spectrochim. Acta A Mol. Biomol. Spectrosc. 1998, 54, 197–236. [Google Scholar] [CrossRef]
- Lins, B.; Zinn, P.; Engelbrecht, R.; Schmauss, B. Simulation-Based Comparison of Noise Effects in Wavelength Modulation Spectroscopy and Direct Absorption TDLAS. Appl. Phys. B 2010, 100, 367–376. [Google Scholar] [CrossRef]
- Gazizov, I.; Pinto, D.; Moser, H.; Sam, S.; Martín-Mateos, P.; O’Faolain, L.; Lendl, B. Absorption and Dispersion: In Search of a Versatile Spectroscopic Technique. Sens. Actuators B Chem. 2025, 436, 137688. [Google Scholar] [CrossRef]
- Meshcherinov, V.; Gazizov, I.; Kazakov, V.; Spiridonov, M.; Lebedev, Y.; Vinogradov, I.; Gerasimov, M. Spectrometer to Explore Isotopologues of Lunar Volatiles on Luna-27 Lander. Planet. Space Sci. 2024, 248, 105935. [Google Scholar] [CrossRef]
- Rodin, A.; Vinogradov, I.; Zenevich, S.; Spiridonov, M.; Gazizov, I.; Kazakov, V.; Meshcherinov, V.; Golovin, I.; Kozlova, T.; Lebedev, Y.; et al. Martian Multichannel Diode Laser Spectrometer (M-DLS) for In-Situ Atmospheric Composition Measurements on Mars Onboard ExoMars-2022 Landing Platform. Appl. Sci. 2020, 10, 8805. [Google Scholar] [CrossRef]
- Meshcherinov, V.V.; Spiridonov, M.V.; Kazakov, V.A.; Rodin, A.V. Lidar-Based Remote Infrared Gas Sensor for Monitoring Anthropogenic Pollution: A Proof of Concept. Quantum Electron. 2020, 50, 1055–1062. [Google Scholar] [CrossRef]
- Meshcherinov, V.; Kazakov, V.; Spiridonov, M.; Suvorov, G.; Rodin, A. Lidar-Based Gas Analyzer for Remote Sensing of Atmospheric Methane. Sens. Actuators B Chem. 2025, 424, 136899. [Google Scholar] [CrossRef]
- Stewart, G.; Johnstone, W.; Bain, J.; Ruxton, K.; Duffin, K. Recovery of Absolute Gas Absorption Line Shapes Using Tuneable Diode Laser Spectroscopy with Wavelength Modulation—Part I: Theoretical Analysis. J. Light. Technol. 2011, 29, 811–821. [Google Scholar] [CrossRef]
- Bain, J.R.P.; Johnstone, W.; Ruxton, K.; Stewart, G.; Lengden, M.; Duffin, K. Recovery of Absolute Gas Absorption Line Shapes Using Tunable Diode Laser Spectroscopy With Wavelength Modulation—Part 2: Experimental Investigation. J. Light. Technol. 2011, 29, 987–996. [Google Scholar] [CrossRef]
- Andreev, S.N.; Nikolaev, I.V.; Ochkin, V.N.; Savinov, S.Y.; Spiridonov, M.V.; Tskhai, S.N. Frequency Modulation upon Nonstationary Heating of the p–n Junction in High-Sensitive Diode Laser Spectroscopy. Quantum Electron. 2007, 37, 399–404. [Google Scholar] [CrossRef]
- Mironenko, V.R.; Kuritsyn, Y.A.; Liger, V.V.; Bolshov, M.A. Data Processing Algorithm for Diagnostics of Combustion Using Diode Laser Absorption Spectrometry. Appl. Spectrosc. 2018, 72, 199–208. [Google Scholar] [CrossRef]
- Wang, Z.; Fu, P.; Chao, X. Baseline Reduction Algorithm for Direct Absorption Spectroscopy with Interference Features. Meas. Sci. Technol. 2020, 31, 035202. [Google Scholar] [CrossRef]
- Kochanov, R.V.; Gordon, I.E.; Rothman, L.S.; Wcisło, P.; Hill, C.; Wilzewski, J.S. HITRAN Application Programming Interface (HAPI): A Comprehensive Approach to Working with Spectroscopic Data. J. Quant. Spectrosc. Radiat. Transf. 2016, 177, 15–30. [Google Scholar] [CrossRef]
- Werle, P.; Mücke, R.; Slemr, F. The Limits of Signal Averaging in Atmospheric Trace-Gas Monitoring by Tunable Diode-Laser Absorption Spectroscopy (TDLAS). Appl. Phys. B Photophysics Laser Chem. 1993, 57, 131–139. [Google Scholar] [CrossRef]
- Werle, P. Accuracy and Precision of Laser Spectrometers for Trace Gas Sensing in the Presence of Optical Fringes and Atmospheric Turbulence. Appl. Phys. B 2011, 102, 313–329. [Google Scholar] [CrossRef]
- Azbukin, A.A.; Bogushevich, A.Y.; Korol’kov, V.A.; Tikhomirov, A.A.; Shelevoi, V.D. A Field Version of the AMK-03 Automated Ultrasonic Meteorological Complex. Russ. Meteorol. Hydrol. 2009, 34, 133–136. [Google Scholar] [CrossRef]
- Korolkov, V.A.; Telminov, A.E.; Tikhomirov, A.A. Metrological Support of Ultrasonic Thermoanemometers for Measurement of Pulsation Properties of Meteorological Parameters. Atmospheric Ocean. Opt. 2016, 29, 95–102. [Google Scholar] [CrossRef]









| Precision, 1σ | Wavelengths | Mass | Size | Optical Power | Sample Rate | Power Draw | Operating Temperature |
|---|---|---|---|---|---|---|---|
| 57.5 ppb (CO2) 0.8 ppb (CH4) 129 ppb (H2O) | 2782 nm (CO2, H2O) 3241 nm (CH4) | 4.2 kg | ⌀130 mm, 670 mm height | 5.5 mW (CO2, H2O) 8.5 mW (CH4) | up to 20 Hz | 10 W | −20 °C to 40 °C |
| Instrument | Gas Species | Precision | Method | Sample Path | Wavelength | Sampling Rate | Mass | Power Consumption |
|---|---|---|---|---|---|---|---|---|
| E-CAHORS (This work) | CH4 | 8.87 ppb @10 Hz | sWMS/ TDLAS | Open-path four-pass cell—135 cm optical path length | 3240 nm | Up to 20 Hz | 4.2 kg | 10 W |
| CO2 | 0.31 ppm @10 Hz | 2783 nm | ||||||
| H2O | 0.79 ppm @10 Hz | 2783 nm, 3240 nm | ||||||
| LI-7500DS (LI-COR Biosciences, Lincoln, NE, USA) | CO2 | 0.11 ppm @10 Hz | NDIR | Open-path single-pass cell | – | Up to 20 Hz | 1.6 kg | 4 W |
| H2O | 4.7 ppm @10 Hz | |||||||
| LI-7200RS (LI-COR Biosciences, Lincoln, NE, USA) | CO2 | 0.11 ppm @10 Hz | NDIR | Closed-path single-pass cell | – | Up to 20 Hz | 1.8 kg | 12 W |
| H2O | 4.7 ppm @10 Hz | |||||||
| IRGASON (Campbell Scientific, North Logan, UT, USA) | CO2 | 0.15 ppm @20 Hz | NDIR | Open-path—15.37 cm optical path length | – | Up to 60 Hz | 6 kg | 5 W |
| H2O | 6 ppm @20 Hz | |||||||
| EC155 (Campbell Scientific, North Logan, UT, USA) | CO2 | 0.15 ppm @20 Hz | NDIR | Closed-path—15.6 cm optical path length | – | Up to 60 Hz | 3.9 kg | 5 W |
| H2O | 6 ppm @20 Hz | |||||||
| Li M. et al. (China) [19] | CO2 | 0.13 ppm @10 Hz | TDLAS | Open-path Herriott cell—20 m optical path length | 2004 nm | Up to 100 Hz | – | – |
| H2O | 3.25 ppm @10 Hz | Open-path single-pass cell—15 cm optical path length | 1392 nm | |||||
| Li X. et al. (China) | CO2 | 0.31 ppm @500 Hz | WMS-θ1f | Open-path Herriott cell—20 m optical path length | 2004 nm | Up to 500 Hz | – | – |
| H2O | 8.35 ppm @500 Hz | Open-path single-pass cell—30 cm optical path length | 1382 nm | |||||
| G2311-f (Picarro Inc., Santa Clara, CA, USA) | CH4 | 3 ppb @10 Hz | CRDS | Closed-path | 1603 nm | Up to 10 Hz | 37.7 kg | 360 W |
| CO2 | 0.2 ppm @10 Hz | 1651 nm | ||||||
| H2O | 6 ppm @10 Hz | 1603 nm | ||||||
| Gu M. et al. (China) | CO2 | 0.68 ppm @10 Hz | WMS | Open-path Herriot cell— 42.5 cm base length and 6.8 m optical path length | 2004 nm | Up to 10 Hz | 9.2 kg | 40 W |
| H2O | 5.98 ppm @10 Hz | Open-path two-pass cell—42.5 cm base length and 85 cm optical path length | 1392 nm | |||||
| LI-7700 (LI-COR Biosciences, Lincoln, NE, USA) | CH4 | 5 ppb @10 Hz | WMS | Open-path Herriot cell— 47 cm base length and 30 m optical path length | 1.65 μm | Up to 20 Hz | 8.4 kg | 8 W |
| HT8600 (Healthy Photon Co., Ningbo, China) | CH4 | 5 ppb @10 Hz | WMS | Open-path Herriot cell— 0.5 m base length and 46 m optical path length | 3221.1 nm | 10 Hz | 10 kg | 30 W |
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Meshcherinov, V.; Gazizov, I.; Pravuk, B.; Kazakov, V.; Zenevich, S.; Spiridonov, M.; Gazizov, S.; Suvorov, G.; Kuricheva, O.; Lebedev, Y.; et al. An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O. Sensors 2026, 26, 462. https://doi.org/10.3390/s26020462
Meshcherinov V, Gazizov I, Pravuk B, Kazakov V, Zenevich S, Spiridonov M, Gazizov S, Suvorov G, Kuricheva O, Lebedev Y, et al. An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O. Sensors. 2026; 26(2):462. https://doi.org/10.3390/s26020462
Chicago/Turabian StyleMeshcherinov, Viacheslav, Iskander Gazizov, Bogdan Pravuk, Viktor Kazakov, Sergei Zenevich, Maxim Spiridonov, Shamil Gazizov, Gennady Suvorov, Olga Kuricheva, Yuri Lebedev, and et al. 2026. "An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O" Sensors 26, no. 2: 462. https://doi.org/10.3390/s26020462
APA StyleMeshcherinov, V., Gazizov, I., Pravuk, B., Kazakov, V., Zenevich, S., Spiridonov, M., Gazizov, S., Suvorov, G., Kuricheva, O., Lebedev, Y., Vinogradov, I., & Rodin, A. (2026). An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O. Sensors, 26(2), 462. https://doi.org/10.3390/s26020462

