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January 14, 2026Sensors0 citationsOpen Access

An Open-Path Eddy-Covariance Laser Spectrometer for Simultaneous Monitoring of CO2, CH4, and H2O

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VMViacheslav MeshcherinovSpace Research InstituteIGIskander GazizovTU WienBPBogdan PravukSpace Research Institute

Key Points

  • The aim was to develop a compact spectrometer for simultaneous gas measurements and flux determination in the atmosphere.
  • Designed E-CAHORS, an open-path diode-laser spectrometer
  • Used interband cascade lasers for CO2, CH4, and H2O detection
  • Employed TDLAS and sWMS techniques for data acquisition
  • Conducted field tests at a grassland site near Moscow for calibration and validation.
  • Achieved linear detection responses (R2 ≈ 0.999) for all gases during calibration
  • Field tests showed strong correlations with commercial analyzers (R = 0.91 for CO2 and H2O, R = 0.74 for CH4)
  • TDLAS mode exhibited lower noise and better stability compared to sWMS
  • The device operates on low power consumption (10 W) with a compact design (4.2 kg)

Abstract

We present E-CAHORS—a compact mid-infrared open-path diode-laser spectrometer designed for the simultaneous measurement of carbon dioxide, methane, and water vapor concentrations in the near-surface atmospheric layer. These measurements, combined with simultaneous data from a three-dimensional anemometer, can be used to determine fluxes using the eddy-covariance method. The instrument utilizes two interband cascade lasers operating at 2.78 µm and 3.24 µm within a novel four-pass M-shaped optical cell, which provides high signal power and long-term field operation without requiring active air sampling. Two detection techniques—tunable diode laser absorption spectroscopy (TDLAS) and a simplified wavelength modulation spectroscopy (sWMS)—were implemented and evaluated. Laboratory calibration demonstrated linear responses for all gases (R2 ≈ 0.999) and detection precisions at 10 Hz of 311 ppb for CO2, 8.87 ppb for CH4, and 788 ppb for H2O. Field tests conducted at a grassland site near Moscow showed strong correlations (R = 0.91 for CO2 and H2O, R = 0.74 for CH4) with commercial LI-COR LI-7200 and LI-7700 analyzers. The TDLAS mode demonstrated lower noise and greater stability under outdoor conditions, while sWMS provided baseline-free spectra but was more sensitive to power fluctuations. E-CAHORS combines high precision, multi-species sensing capability with low power consumption (10 W) and a compact design (4.2 kg).

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Cite This Study

Meshcherinov et al. (2026) studied this question.

synapsesocial.com/papers/6966f30613bf7a6f02c00929https://doi.org/10.3390/s26020462
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