Open Access
Issue
EPJ Web Conf.
Volume 362, 2026
31st International Laser Radar Conference (ILRC 31) Held Together with the 22nd Coherent Laser Radar Conference (CLRC 22)
Article Number 09021
Number of page(s) 4
Section Lidar Measurements of Trace Gases (including Greenhouse Gases and Water Vapour)
DOI https://doi.org/10.1051/epjconf/202636209021
Published online 09 April 2026
  1. F. Zhang, et al., “The survey of key technologies in hydrogen energy storage,” Int J Hydrogen Energy 41(33), 14535–14552 (2016). [Google Scholar]
  2. M. Hirscher, et al., “Materials for hydrogen-based energy storage e past, recent progress and future outlook,” J Alloys and Compds 827, 153548 (2020). [Google Scholar]
  3. T. Shimizu, et al., “A region-specific environmental analysis of technology implementation of hydrogen energy in Japan based on life cycle assessment,” J Ind Ecol 24(1), 217–33 (2020). [Google Scholar]
  4. F. Innocenti, et al., “Differential Absorption Lidar (DIAL) Measurements of Landfill Methane Emissions,” Remote Sens 9(9), 953 (2017). [Google Scholar]
  5. T. Somekawa, et al., “Flash resonance Raman lidar for SO2 gas leak detection,” Opt Commun 513, 128083 (2022). [Google Scholar]
  6. A. Liméry, et al., “Raman lidar for hydrogen gas concentration monitoring and future radioactive waste management,” Opt Express 25(24), 30636–30641 (2017). [Google Scholar]
  7. J. Titchener, et al., “Single photon Lidar gas imagers for practical and widespread continuous methane monitoring,” Appl Energy 306(B), 118086 (2022). [Google Scholar]
  8. E. D. Hinkley, “High-Resolution Infrared Spectroscopy with a Tunable Diode Laser,” Appl Phys Lett 16(9), 351–354 (1970). [Google Scholar]
  9. J. Reid and D. Labrie, “Second-harmonic detection with tunable diode lasers - Comparison of experiment and theory,” Appl Phys B Photophys Laser Chem 26(3), 203–210 (1981). [Google Scholar]
  10. T. Iseki, et al., “A portable remote methane sensor using a tunable diode laser,” Meas Sci Technol 11(6), 594–602 (2000). [Google Scholar]
  11. G. B. Rieker, et al., “Calibration-free wavelength-modulation spectroscopy for measurements of gas temperature and concentration in harsh environments,” Appl Opt 48(29), 5546–5560 (2009). [Google Scholar]
  12. J.N. Oliaee, et al., “Development of a Sub-ppb resolution methane sensor using a GaSb-based DFB diode laser near 3270 nm for fugitive emission measurement,” ACS Sens 7(2), 564–572 (2022). [Google Scholar]
  13. I. E. Gordon, et al., “The HITRAN 2020 molecular spectroscopic database,” J Quant Spectrosc Radiat Transf 277, 107949 (2022). [Google Scholar]
  14. H. Wahlquist “Modulation broadening of unsaturated Lorentzian lines,” J Chem Phys 35, 1708–1710 (1961). [Google Scholar]

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