Divergent sensitivity of red and far-red Fraunhofer line fluorescence in-filling to water stress dynamics in almond orchards
作者:Na Wang, A. Belwalkar, T. Poblete, Peiqi Yang, Wonseok Choi, Alessio Scalisi, Mark O'Connell, Youngryel Ryu, Victoria González-Dugo, Pablo J. Zarco-Tejada · 发表于:Remote Sensing of Environment · 年份:2026 · DOI:10.1016/j.rse.2026.115375 · 被引用次数:1 · 研究领域:Plant Water Relations and Carbon Dynamics、Remote Sensing in Agriculture、Horticultural and Viticultural Research
Plant primary responses to water stress involve changes in both transpiration and photosynthesis, with the relationship between these processes varying during the stress. Currently, precision irrigation decisions are based mainly on transpiration as an indicator of water stress. However, this practice can be misleading as crop yield and quality are also affected by stress-related impairment of photosynthesis, which may be hidden in remote sensing thermal data. In this study, we acquired airborne hyperspectral and thermal imagery to evaluate the coupling between transpiration and photosynthesis in almond ( Prunus dulcis ) trees at mild- and high-level water stress and post-rehydration recovery stages, assessing canopy–air temperature difference (T c T a ) as a marker of transpiration, with sun-induced chlorophyll fluorescence (SIF) and fluorescence in-filling across Fraunhofer lines (FLs; FL depth) as indicators of photosynthesis. Leaf-level measurements (e.g. stem water potential (SWP), instantaneous steady-state chlorophyll fluorescence (F t ), quantum yield of photosystem II (Q y ) were acquired to assess almond physiological conditions at the three investigated stress stages. Diurnal responses of SIF and FL depth to water dynamics were further investigated to gain deeper insight into photosynthetic dynamics under varying water stress. Under high-level water stress, we observed significant differences in T c T a , SIF, and FL depths between watered and water-stressed trees,...