Response of Canopy Solar-Induced Chlorophyll Fluorescence to the Absorbed Photosynthetically Active Radiation Absorbed by Chlorophyll

被引:77
作者
Du, Shanshan [1 ,2 ]
Liu, Liangyun [1 ]
Liu, Xinjie [1 ]
Hu, Jiaochan [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Remote Sensing & Digital Earth, Key Lab Digital Earth Sci, Beijing 100094, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
solar-induced chlorophyll fluorescence (SIF); absorbed photosynthetically active radiation (APAR); chlorophyll; SCOPE model; GROSS PRIMARY PRODUCTION; SPECTRAL-RESOLUTION; RETRIEVAL; MODEL; SIMULATIONS; ECOSYSTEMS; GOME-2; FLUXES;
D O I
10.3390/rs9090911
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Solar-induced chlorophyll fluorescence (SIF), which can be used as a novel proxy for estimating gross primary production (GPP), can be effectively retrieved using ground-based, airborne and satellite measurements. Absorbed photosynthetically active radiation (APAR) is the key bridge linking SIF and GPP. Remotely sensed SIF at the canopy level (SIFcanopy) is only a part of the total SIF emission at the photosystem level. An SIF-based model for GPP estimation would be strongly influenced by the fraction of SIF photons escaping from the canopy (fesc). Understanding the response of SIFcanopy to the absorbed photosynthetically active radiation absorbed by chlorophyll (APARchl) is a key step in estimating GPP but, as yet, this has not been well explored. In this study, we aim to investigate the relationship between remotely sensed SIFcanopy and APARchl based on simulations made by the Soil Canopy Observation Photosynthesis Energy fluxes (SCOPE) model and field measurements. First, the ratio of the fraction of the absorbed photosynthetically active radiation absorbed by chlorophyll (fPARchl) to the fraction of absorbed photosynthetically active radiation absorbed by green leaves (fPARgreen) is investigated using a dataset simulated by the SCOPE model. The results give a mean value of 0.722 for Cab at 5 mu g cm 2, 0.761 for Cab at 10 mu g cm 2 and 0.795 for other Cab content (ranging from 0.71 to 0.81). The response of SIFcanopy to APARchl is then explored using simulations corresponding to different biochemical and biophysical conditions and it is found that SIFcanopy is well correlated with APARchl. At the O2-A band, for a given plant type, the relationship between SIFcanopy and APARchl can be approximately expressed by a linear statistical model even for different values of the leaf area index (LAI) and chlorophyll content, whereas the relationship varies with the LAI and chlorophyll content at the O2-B band. Finally, the response of SIFcanopy to APARchl for different leaf angle distribution (LAD) functions is investigated using field observations and simulations; the results show that fesc is larger for a planophile canopy structure. The values of the ratio of SIFcanopy to APARchl are 0.0092 +/- 0.0020, 0.0076 +/- 0.0036 and 0.0052 +/- 0.0004 m 1 sr 1 for planophile vegetables/crops, planophile grass and spherical winter wheat, respectively, at the O2-A band. At the O2-B band, the ratios are 0.0063 0.0014, 0.0049 0.0030 and 0.0033 0.0004 m 1 sr 1, respectively. The values of this ratio derived from observations agree with simulations, giving values of 0.0055 0.0002 and 0.0068 0.0001 m 1 sr 1 at the O2-A band and 0.0032 0.0002 and 0.0047 0.0001 m 1 sr 1 at the O2-B band for spherical and planophile canopies, respectively. Therefore, both the simulations and observations confirm that the relationship between SIFcanopy and APARchl is species-specific and affected by biochemical components and canopy structure, especially at the O2-B band. It is also very important to correct for reabsorption and scattering of the SIF radiative transfer from the photosystem to the canopy level before the remotely sensed SIFcanopy is linked to the GPP.
引用
收藏
页数:19
相关论文
共 55 条
  • [31] A Novel in Situ FPAR Measurement Method for Low Canopy Vegetation Based on a Digital Camera and Reference Panel
    Liu, Liangyun
    Peng, Dailiang
    Hu, Yong
    Jiao, Quanjun
    [J]. REMOTE SENSING, 2013, 5 (01): : 274 - 281
  • [32] Maier S. W., 2003, Digital imaging and spectral techniques: applications to precision agriculture and crop physiology. Proceedings of a symposium sponsored by Division C-2 of the Crop Science Society of America, the USDA-ARS, and the Rockefeller Foundation in Minneapolis, MN, November 2001, P209
  • [33] CANOPY LEVEL CHLOROPHYLL FLUORESCENCE AND THE PRI IN A CORNFIELD
    Middleton, Elizabeth M.
    Cheng, Yen-Ben
    Corp, Lawrence A.
    Campbell, Petya K. E.
    Huemmrich, K. Fred
    Zhang, Qingyuan
    Kustas, William P.
    [J]. 2012 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM (IGARSS), 2012, : 7117 - 7120
  • [34] MK II FRAUNHOFER LINE DISCRIMINATOR (FLD-II) FOR AIRBORNE AND ORBITAL REMOTE-SENSING OF SOLAR-STIMULATED LUMINESCENCE
    PLASCYK, JA
    [J]. OPTICAL ENGINEERING, 1975, 14 (04) : 339 - 346
  • [35] Linking chlorophyll a fluorescence to photosynthesis for remote sensing applications: mechanisms and challenges
    Porcar-Castell, Albert
    Tyystjarvi, Esa
    Atherton, Jon
    van der Tol, Christiaan
    Flexas, Jaume
    Pfuendel, Erhard E.
    Moreno, Jose
    Frankenberg, Christian
    Berry, Joseph A.
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2014, 65 (15) : 4065 - 4095
  • [36] Sun-induced fluorescence - a new probe of photosynthesis: First maps from the imaging spectrometer HyPlant
    Rascher, U.
    Alonso, L.
    Burkart, A.
    Cilia, C.
    Cogliati, S.
    Colombo, R.
    Damm, A.
    Drusch, M.
    Guanter, L.
    Hanus, J.
    Hyvarinen, T.
    Julitta, T.
    Jussila, J.
    Kataja, K.
    Kokkalis, P.
    Kraft, S.
    Kraska, T.
    Matveeva, M.
    Moreno, J.
    Muller, O.
    Panigada, C.
    Pikl, M.
    Pinto, F.
    Prey, L.
    Pude, R.
    Rossini, M.
    Schickling, A.
    Schurr, U.
    Schuttemeyer, D.
    Verrelst, J.
    Zemek, F.
    [J]. GLOBAL CHANGE BIOLOGY, 2015, 21 (12) : 4673 - 4684
  • [37] Running SW, 2004, BIOSCIENCE, V54, P547, DOI 10.1641/0006-3568(2004)054[0547:ACSMOG]2.0.CO
  • [38] 2
  • [39] Photosynthetic fluorescence, from molecule to planet
    Schlau-Cohen, Gabriela S.
    Berry, Joseph
    [J]. PHYSICS TODAY, 2015, 68 (09) : 66 - 637
  • [40] Models of fluorescence and photosynthesis for interpreting measurements of solar-induced chlorophyll fluorescence
    van der Tol, C.
    Berry, J. A.
    Campbell, P. K. E.
    Rascher, U.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2014, 119 (12) : 2312 - 2327