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000837196 1001_ $$0P:(DE-HGF)0$$aMiddleton, Elizabeth$$b0
000837196 245__ $$aThe 2013 FLEX—US Airborne Campaign at the Parker Tract Loblolly Pine Plantation in North Carolina, USA82
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000837196 520__ $$aThe first European Space Agency (ESA) and NASA collaboration in an airborne campaign to support ESA’s FLuorescence EXplorer (FLEX) mission was conducted in North Carolina, USA during September–October 2013 (FLEX-US 2013) at the Parker Tract Loblolly Pine (LP) Plantation (Plymouth, NC, USA). This campaign combined two unique airborne instrument packages to obtain simultaneous observations of solar-induced fluorescence (SIF), LiDAR-based canopy structural information, visible through shortwave infrared (VSWIR) reflectance spectra, and surface temperature, to advance vegetation studies of carbon cycle dynamics and ecosystem health. We obtained statistically significant results for fluorescence, canopy temperature, and tower fluxes from data collected at four times of day over two consecutive autumn days across an age class chronosequence. Both the red fluorescence (F685) and far-red fluorescence (F740) radiances had highest values at mid-day, but their fluorescence yields exhibited different diurnal responses across LP age classes. The diurnal trends for F685 varied with forest canopy temperature difference (canopy minus air), having a stronger daily amplitude change for young vs. old canopies. The Photochemical Reflectance Index (PRI) was positively correlated with this temperature variable over the diurnal cycle. Tower measurements from mature loblolly stand showed the red/far-red fluorescence ratio was linearly related to canopy light use efficiency (LUE) over the diurnal cycle, but performed even better for the combined morning/afternoon (without midday) observations. This study demonstrates the importance of diurnal observations for interpretation of fluorescence dynamics, the need for red fluorescence to understand canopy physiological processes, and the benefits of combining fluorescence, reflectance, and structure information to clarify canopy function versus structure characteristics for a coniferous forest
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000837196 7001_ $$0P:(DE-Juel1)129388$$aRascher, Uwe$$b1$$eCorresponding author
000837196 7001_ $$0P:(DE-HGF)0$$aCorp, Lawrence$$b2
000837196 7001_ $$0P:(DE-HGF)0$$aHuemmrich, K.$$b3
000837196 7001_ $$0P:(DE-HGF)0$$aCook, Bruce$$b4
000837196 7001_ $$0P:(DE-HGF)0$$aNoormets, Asko$$b5
000837196 7001_ $$0P:(DE-Juel1)7338$$aSchickling, Anke$$b6
000837196 7001_ $$0P:(DE-Juel1)138884$$aPinto, Francisco$$b7
000837196 7001_ $$0P:(DE-HGF)0$$aAlonso, Luis$$b8
000837196 7001_ $$0P:(DE-HGF)0$$aDamm, Alexander$$b9
000837196 7001_ $$0P:(DE-HGF)0$$aGuanter, Luis$$b10
000837196 7001_ $$0P:(DE-HGF)0$$aColombo, Roberto$$b11
000837196 7001_ $$0P:(DE-HGF)0$$aCampbell, Petya$$b12
000837196 7001_ $$0P:(DE-HGF)0$$aLandis, David$$b13$$eCorresponding author
000837196 7001_ $$0P:(DE-HGF)0$$aZhang, Qingyuan$$b14
000837196 7001_ $$0P:(DE-HGF)0$$aRossini, Micol$$b15
000837196 7001_ $$0P:(DE-HGF)0$$aSchuettemeyer, Dirk$$b16
000837196 7001_ $$0P:(DE-HGF)0$$aBianchi, Remo$$b17
000837196 773__ $$0PERI:(DE-600)2513863-7$$a10.3390/rs9060612$$gVol. 9, no. 6, p. 612 -$$n6$$p612 -$$tRemote sensing$$v9$$x2072-4292$$y2017
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