Laser & Optoelectronics Progress, Volume. 61, Issue 2, 0211016(2024)

Hyper-Spectral Imaging Spectrometer for Solar-Induced Chlorophyll Fluorescence of Vegetation Observation (Invited)

Lei Yu1、*, Tao Wang1,2, and Jing Lin3
Author Affiliations
  • 1Anhui Institute of Optics and Fine Mechanics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, Anhui , China
  • 2Scinece Island Branch, Graduate School of USTC, Hefei 230026, Anhui , China
  • 3Department of Chemical and Chemical Engineering, Hefei Normal University, Hefei 230601, Anhui , China
  • show less
    References(13)

    [1] Aasen H, Wittenberghe S V, Medina N S et al. Sun-induced chlorophyll fluorescence II: review of passive measurement setups, protocols, and their application at the leaf to canopy level[J]. Remote Sensing, 11, 927(2019).

    [2] Liu X J, Liu L Y. Influence of the canopy BRDF characteristics and illumination conditions on the retrieval of solar-induced chlorophyll fluorescence[J]. International Journal of Remote Sensing, 39, 1782-1799(2018).

    [3] Yu L, Zheng S S, Feng H S et al. Solar-induced chlorophyll fluorescence imaging spectrometer: design, manufacture, and evaluation[J]. Optics Express, 30, 41422-41436(2022).

    [4] Mohammed G H, Colombo R, Middleton E M et al. Remote sensing of solar-induced chlorophyll fluorescence (SIF) in vegetation: 50 years of progress[J]. Remote Sensing of Environment, 231, 111177(2019).

    [5] Joiner J, Yoshida Y, Vasilkov A P et al. Filling-in of near-infrared solar lines by terrestrial fluorescence and other geophysical effects: simulations and space-based observations from SCIAMACHY and GOSAT[J]. Atmospheric Measurement Techniques, 5, 809-829(2012).

    [6] Li X, Xiao J F, He B B. Chlorophyll fluorescence observed by OCO-2 is strongly related to gross primary productivity estimated from flux towers in temperate forests[J]. Remote Sensing of Environment, 204, 659-671(2018).

    [7] Du S S, Liu L Y, Liu X J et al. Retrieval of global terrestrial solar-induced chlorophyll fluorescence from TanSat satellite[J]. Science Bulletin, 63, 1502-1512(2018).

    [8] Joiner J, Guanter L, Lindstrot R et al. Global monitoring of terrestrial chlorophyll fluorescence from moderate-spectral-resolution near-infrared satellite measurements: methodology, simulations, and application to GOME-2[J]. Atmospheric Measurement Techniques, 6, 2803-2823(2013).

    [9] Guanter L, Aben I, Tol P et al. Potential of the TROPO-Spheric Monitoring Instrument (TROPOMI) onboard the Sentinel-5 precursor for the monitoring of terrestrial chlorophyll fluorescence[J]. Atmospheric Measurement Techniques, 8, 1337-1352(2015).

    [10] Coppo P, Taiti A, Pettinato L et al. Fluorescence imaging spectrometer (FLORIS) for ESA FLEX mission[J]. Remote Sensing, 9, 649(2017).

    [11] Du S S, Liu L Y, Liu X J et al. The solar-induced chlorophyll fluorescence imaging spectrometer (SIFIS) onboard the first terrestrial ecosystem carbon inventory satellite (TECIS-1): specifications and prospects[J]. Sensors, 20, 815(2020).

    [12] Yu L. Development and application of imaging spectrometer(invited)[J]. Infrared and Laser Engineering, 51, 20210940(2022).

    [13] Alonso L, Gomez-Chova L, Vila-Frances J et al. Improved Fraunhofer line discrimination method for vegetation fluorescence quantification[J]. IEEE Geoscience and Remote Sensing Letters, 5, 620-624(2008).

    Tools

    Get Citation

    Copy Citation Text

    Lei Yu, Tao Wang, Jing Lin. Hyper-Spectral Imaging Spectrometer for Solar-Induced Chlorophyll Fluorescence of Vegetation Observation (Invited)[J]. Laser & Optoelectronics Progress, 2024, 61(2): 0211016

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Imaging Systems

    Received: Sep. 25, 2023

    Accepted: Oct. 13, 2023

    Published Online: Feb. 6, 2024

    The Author Email: Yu Lei (yulei@aiofm.ac.cn)

    DOI:10.3788/LOP232182

    Topics