6533b823fe1ef96bd127e22f
RESEARCH PRODUCT
Quantitative global mapping of terrestrial vegetation photosynthesis
Gina H. MohammedElizabeth M. MiddletonJose MorenoUwe RascherAlexander DammMatthias DruschChristiaan Van Der TolYves GoulasMatti MõttusFranco MigliettaPeter NorthRoberto Colombosubject
Canopy010504 meteorology & atmospheric sciences0211 other engineering and technologies02 engineering and technologyimaging spectroscopy01 natural sciencesphotosynthesivegetationphotosyntesis1706 Computer Science ApplicationsSpectral resolution910 Geography & travelImage resolutionFLEX earth explorer021101 geological & geomatics engineering0105 earth and related environmental sciencesRemote sensingSpectrometer1900 General Earth and Planetary Sciencesimaging spectrocopyVegetation15. Life on landImaging spectroscopy10122 Institute of Geography13. Climate actionRadianceEnvironmental scienceSatellitefluorescencedescription
Although traditional remote sensing systems based on spectral reflectance can already provide estimates of the 'potential' photosynthetic activity of terrestrial vegetation through the quantification of total canopy chlorophyll content or absorbed photosynthetic radiation, the determination of the 'actual' photosynthetic activity of terrestrial vegetation requires information about how the absorbed light is used by plants, such as vegetation fluorescence, using very high spectral resolution spectroscopy in the range 650-800 nm. The Fluorescence Explorer (FLEX) mission, selected in November 2015 as the 8th Earth Explorer by the European Space Agency (ESA), carries the FLORIS spectrometer, with a spectral resolution of 0.3 nm and a spatial resolution of 300 m, with a swath of 150 km. The FLEX mission is designed to fly in tandem with the Copernicus Sentinel-3 satellite, in order to provide all the necessary information to disentangle emitted fluorescence from the background reflected radiance, and to allow proper interpretation of the fluorescence spatial and temporal changes in relation to photosynthesis dynamics, accounting for non-photochemical energy dissipation and canopy temperature effects.
year | journal | country | edition | language |
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2017-12-01 |