Back to Search
Start Over
CEFLES2: The remote sensing component to quantify photosynthetic efficiency from the leaf to the region by measuring sun-induced fluorescence in the oxygen absorption bands
- Source :
- Scopus-Elsevier, Biogeosciences, Vol 6, Iss 7, Pp 1181-1198 (2009), Biogeosciences, Biogeosciences 1181-1198 (2009)., ResearcherID, Biogeosciences (Online) 6 (2009): 1181–1198., info:cnr-pdr/source/autori:Rascher U.; Agati G.; Alonso L.; Cecchi G.; Champagne S.; Colombo R.; Damm A.; Daumard F.; de Miguel E.; Fernandez G.; Franch B.; Franke J.; Gerbig C.; Gioli B.; Gómez J. A.; Goulas Y.; Guanter L.; Gutiérrez-de-la-Cámara Ó.; Hamdi K.; Hostert P.; Jiménez M.; Kosvancova M.; Lognoli D.; Meroni M.; Miglietta F.; Moersch A.; Moreno J.; Moya I.; Neininger B.; Okujeni A.; Ounis A.; Palombi L.; Raimondi V.; Schickling A.; Sobrino J. A.; Stellmes M.; Toci G.; Toscano P.; Udelhoven T.; van der Linden S.; Zaldei A./titolo:CEFLES2: the remote sensing component to quantify photosynthetic efficiency from the leaf to the region by measuring sun-induced fluorescence in the oxygen absorption bands/doi:/rivista:Biogeosciences (Online)/anno:2009/pagina_da:1181/pagina_a:1198/intervallo_pagine:1181–1198/volume:6, 6 (2009): 1181–1198. doi:10.5194/bg-6-1181-2009, info:cnr-pdr/source/autori:U. Rascher; G. Agati; L. Alonso; G. Cecchi; S. Champagne; R. Colombo; A. Damm; F. Daumard; E. de Miguel; G. Fernandez; B. Franch; J. Franke; C. Gerbig; B. Gioli; J. A. Gòmez; Y. Goulas; L. Guanter; O. Gutièrrez-de-la-Càmara; K. Hamdi; P. Hostert; M. Jimènez; M. Kosvancova; D. Lognoli; M. Meroni; F. Miglietta; A. Moersch; J. Moreno; I. Moya; B. Neininger; A. Okujeni; A. Ounis; L. Palombi; V. Raimondi; A. Schickling; J. A. Sobrino; M. Stellmes; G. Toci; P. Toscano; T. Udelhoven; S. van der Linden; and A. Zaldei/titolo:CEFLES2: the remote sensing component to quantify photosynthetic efficiency from the leaf to the region by measuring sun-induced fluorescence in the oxygen absorption bands/doi:10.5194%2Fbg-6-1181-2009/rivista:Biogeosciences (Print)/anno:2009/pagina_da:1181/pagina_a:1198/intervallo_pagine:1181–1198/volume:6
-
Abstract
- The CEFLES2 campaign during the Carbo Europe Regional Experiment Strategy was designed to provide simultaneous airborne measurements of solar induced fluorescence and CO2 fluxes. It was combined with extensive ground-based quantification of leaf- and canopy-level processes in support of ESA's Candidate Earth Explorer Mission of the "Fluorescence Explorer" (FLEX). The aim of this campaign was to test if fluorescence signal detected from an airborne platform can be used to improve estimates of plant mediated exchange on the mesoscale. Canopy fluorescence was quantified from four airborne platforms using a combination of novel sensors: (i) the prototype airborne sensor AirFLEX quantified fluorescence in the oxygen A and B bands, (ii) a hyperspectral spectrometer (ASD) measured reflectance along transects during 12 day courses, (iii) spatially high resolution georeferenced hyperspectral data cubes containing the whole optical spectrum and the thermal region were gathered with an AHS sensor, and (iv) the first employment of the high performance imaging spectrometer HYPER delivered spatially explicit and multi-temporal transects across the whole region. During three measurement periods in April, June and September 2007 structural, functional and radiometric characteristics of more than 20 different vegetation types in the Les Landes region, Southwest France, were extensively characterized on the ground. The campaign concept focussed especially on quantifying plant mediated exchange processes (photosynthetic electron transport, CO2 uptake, evapotranspiration) and fluorescence emission. The comparison between passive sun-induced fluorescence and active laser-induced fluorescence was performed on a corn canopy in the daily cycle and under desiccation stress. Both techniques show good agreement in detecting stress induced fluorescence change at the 760 nm band. On the large scale, airborne and ground-level measurements of fluorescence were compared on several vegetation types supporting the scaling of this novel remote sensing signal. The multi-scale design of the four airborne radiometric measurements along with extensive ground activities fosters a nested approach to quantify photosynthetic efficiency and gross primary productivity (GPP) from passive fluorescence.
- Subjects :
- Imaging spectrometer
Mesoscale meteorology
1904 Earth-Surface Processes
lcsh:Life
550 - Earth sciences
Photosynthetic efficiency
INDUCED CHLOROPHYLL FLUORESCENCE
GROSS PRIMARY PRODUCTION
LIGHT-USE EFFICIENCY
STEADY-STATE
WATER-STRESS
REFLECTANCE
FIELD
HETEROGENEITY
DYNAMICS
BOREAL
remote sensing
Evapotranspiration
ddc:570
lcsh:QH540-549.5
910 Geography & travel
Transect
Ecology, Evolution, Behavior and Systematics
Earth-Surface Processes
Remote sensing
photosynthesis
Spectrometer
lcsh:QE1-996.5
Hyperspectral imaging
Fluorescence
FLEX, Fluorescence, AHS, HYPER, AirFLEX
lcsh:Geology
lcsh:QH501-531
GEO/10 - GEOFISICA DELLA TERRA SOLIDA
10122 Institute of Geography
1105 Ecology, Evolution, Behavior and Systematics
Environmental science
fluorescence
lcsh:Ecology
oxygen
primary production
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Scopus-Elsevier, Biogeosciences, Vol 6, Iss 7, Pp 1181-1198 (2009), Biogeosciences, Biogeosciences 1181-1198 (2009)., ResearcherID, Biogeosciences (Online) 6 (2009): 1181–1198., info:cnr-pdr/source/autori:Rascher U.; Agati G.; Alonso L.; Cecchi G.; Champagne S.; Colombo R.; Damm A.; Daumard F.; de Miguel E.; Fernandez G.; Franch B.; Franke J.; Gerbig C.; Gioli B.; Gómez J. A.; Goulas Y.; Guanter L.; Gutiérrez-de-la-Cámara Ó.; Hamdi K.; Hostert P.; Jiménez M.; Kosvancova M.; Lognoli D.; Meroni M.; Miglietta F.; Moersch A.; Moreno J.; Moya I.; Neininger B.; Okujeni A.; Ounis A.; Palombi L.; Raimondi V.; Schickling A.; Sobrino J. A.; Stellmes M.; Toci G.; Toscano P.; Udelhoven T.; van der Linden S.; Zaldei A./titolo:CEFLES2: the remote sensing component to quantify photosynthetic efficiency from the leaf to the region by measuring sun-induced fluorescence in the oxygen absorption bands/doi:/rivista:Biogeosciences (Online)/anno:2009/pagina_da:1181/pagina_a:1198/intervallo_pagine:1181–1198/volume:6, 6 (2009): 1181–1198. doi:10.5194/bg-6-1181-2009, info:cnr-pdr/source/autori:U. Rascher; G. Agati; L. Alonso; G. Cecchi; S. Champagne; R. Colombo; A. Damm; F. Daumard; E. de Miguel; G. Fernandez; B. Franch; J. Franke; C. Gerbig; B. Gioli; J. A. Gòmez; Y. Goulas; L. Guanter; O. Gutièrrez-de-la-Càmara; K. Hamdi; P. Hostert; M. Jimènez; M. Kosvancova; D. Lognoli; M. Meroni; F. Miglietta; A. Moersch; J. Moreno; I. Moya; B. Neininger; A. Okujeni; A. Ounis; L. Palombi; V. Raimondi; A. Schickling; J. A. Sobrino; M. Stellmes; G. Toci; P. Toscano; T. Udelhoven; S. van der Linden; and A. Zaldei/titolo:CEFLES2: the remote sensing component to quantify photosynthetic efficiency from the leaf to the region by measuring sun-induced fluorescence in the oxygen absorption bands/doi:10.5194%2Fbg-6-1181-2009/rivista:Biogeosciences (Print)/anno:2009/pagina_da:1181/pagina_a:1198/intervallo_pagine:1181–1198/volume:6
- Accession number :
- edsair.doi.dedup.....fca532372e45b30fd26e2035c768e20b
- Full Text :
- https://doi.org/10.5194/bg-6-1181-2009