Nocturnal Light Emitting Diode Induced Fluorescence (LEDIF): A new technique to measure the chlorophyll a fluorescence emission spectral distribution of plant canopies in situ

被引:14
作者
Atherton, Jon [1 ]
Liu, Weiwei [2 ]
Porcar-Castell, Albert [1 ]
机构
[1] Univ Helsinki, Opt Photosynth Lab, Inst Atmospher & Earth Syst Res Forest Sci, Helsinki, Finland
[2] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, LREIS, Beijing 100101, Peoples R China
基金
芬兰科学院;
关键词
LEDIF; Chlorophyll a fluorescence; Plant functional traits; FAST2017; PHOTOCHEMICAL REFLECTANCE INDEX; SUN-INDUCED FLUORESCENCE; ENERGY-DISSIPATION; PHOTOSYSTEM-II; PHOTOSYNTHESIS; RED; ACCLIMATION; SCATTERING; RETRIEVAL; DYNAMICS;
D O I
10.1016/j.rse.2019.03.030
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 a Fluorescence (SIF), which is distributed over a relatively broad (similar to 200 nm) spectral range, is a signal intricately connected to the efficiency of photosynthesis and is now observable from space. Variants of the Fraunhofer Line Depth/Discriminator (FLD) method are used as the basis of retrieval algorithms for estimating SIF from space. Although typically unobserved directly, recent advances in FLD-based algorithms now facilitate the prediction (by model inversion) of the canopy emitted fluorescence spectrum from the discrete-feature FLD retrievals. Here we present first canopy scale measurements of chlorophyll a fluorescence spectra emitted from Scots pine at two times of year, and also from a lingonberry dominated understory. We used a high power mul-tispectral Light Emitting Diode (LED) array to illuminate the respective canopies at night and measured under standardised conditions using a field spectrometer mounted in the nadir position above the canopy. We refer to the technique, which facilitates the in situ upscaling of a commonly measured leaf scale quantity to the canopy, as nocturnal LED-Induced chlorophyll a Fluorescence (LEDIF). The shape of the LEDIF spectra was dependant on the colour of the excitation light and also on the dominant species. Because we measured pine at two different times of year we were also able to show an increase in the canopy scale apparent quantum yield of fluorescence which was consistent with leaf-level increase in fluorescence yield recorded with a monitoring PAM fluorometer. The automation of the LEDIF technique could be used to estimate seasonal changes in canopy fluorescence spectra and yield from fixed or mobile platforms and provide a window into functional traits across species and architectures. LEDIF could also be used to evaluate FLD and inversion-based retrievals of canopy spectra, as well as different irradiance normalisation schemes typically applied to SIF data to account for the dependence of SIF on ambient light conditions.
引用
收藏
页数:12
相关论文
共 43 条
[1]   Using spectral chlorophyll fluorescence and the photochemical reflectance index to predict physiological dynamics [J].
Atherton, J. ;
Nichol, C. J. ;
Porcar-Castell, A. .
REMOTE SENSING OF ENVIRONMENT, 2016, 176 :17-30
[2]   Spatial Variation of Leaf Optical Properties in a Boreal Forest Is Influenced by Species and Light Environment [J].
Atherton, Jon ;
Olascoaga, Benat ;
Alonso, Luis ;
Porcar-Castell, Albert .
FRONTIERS IN PLANT SCIENCE, 2017, 8
[3]   Terrestrial Gross Carbon Dioxide Uptake: Global Distribution and Covariation with Climate [J].
Beer, Christian ;
Reichstein, Markus ;
Tomelleri, Enrico ;
Ciais, Philippe ;
Jung, Martin ;
Carvalhais, Nuno ;
Roedenbeck, Christian ;
Arain, M. Altaf ;
Baldocchi, Dennis ;
Bonan, Gordon B. ;
Bondeau, Alberte ;
Cescatti, Alessandro ;
Lasslop, Gitta ;
Lindroth, Anders ;
Lomas, Mark ;
Luyssaert, Sebastiaan ;
Margolis, Hank ;
Oleson, Keith W. ;
Roupsard, Olivier ;
Veenendaal, Elmar ;
Viovy, Nicolas ;
Williams, Christopher ;
Woodward, F. Ian ;
Papale, Dario .
SCIENCE, 2010, 329 (5993) :834-838
[4]  
Biriukova K., 2018, EGU GEN ASS C, P16936
[5]   Limitations to winter and spring photosynthesis of a Rocky Mountain subalpine forest [J].
Bowling, David R. ;
Logan, Barry A. ;
Hufkens, Koen ;
Aubrecht, Donald M. ;
Richardson, Andrew D. ;
Burns, Sean P. ;
Anderegg, William R. L. ;
Blanken, Peter D. ;
Eiriksson, David P. .
AGRICULTURAL AND FOREST METEOROLOGY, 2018, 252 :241-255
[6]   Variability and application of the chlorophyll fluorescence emission ratio red/far-red of leaves [J].
Buschmann, Claus .
PHOTOSYNTHESIS RESEARCH, 2007, 92 (02) :261-271
[7]   Remote detection of light tolerance in Basil through frequency and transient analysis of light induced fluorescence [J].
Carstensen, Anna-Maria ;
Pocock, Tessa ;
Bankestad, Daniel ;
Wik, Torsten .
COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2016, 127 :289-301
[8]   Retrieval of sun-induced fluorescence using advanced spectral fitting methods [J].
Cogliati, S. ;
Verhoef, W. ;
Kraft, S. ;
Sabater, N. ;
Alonso, L. ;
Vicent, J. ;
Moreno, J. ;
Drusch, M. ;
Colombo, R. .
REMOTE SENSING OF ENVIRONMENT, 2015, 169 :344-357
[9]   Intermittent low temperatures constrain spring recovery of photosynthesis in boreal Scots pine forests [J].
Ensminger, I ;
Sveshnikov, D ;
Campbell, DA ;
Funk, C ;
Jansson, S ;
Lloyd, J ;
Shibistova, O ;
Öquist, G .
GLOBAL CHANGE BIOLOGY, 2004, 10 (06) :995-1008
[10]   Enhanced seasonal CO2 exchange caused by amplified plant productivity in northern ecosystems [J].
Forkel, Matthias ;
Carvalhais, Nuno ;
Roedenbeck, Christian ;
Keeling, Ralph ;
Heimann, Martin ;
Thonicke, Kirsten ;
Zaehle, Soenke ;
Reichstein, Markus .
SCIENCE, 2016, 351 (6274) :696-699