生态生理学
叶绿素荧光
生物地球化学
光合作用
植物生理学
地球系统科学
生态学
生物
遥感
植物
地理
作者
Albert Porcar‐Castell,Zbyněk Malenovský,Troy S. Magney,Shari Van Wittenberghe,Beatriz Fernández‐Marín,Fabienne Maignan,Yongguang Zhang,Kadmiel Maseyk,Jon Atherton,Loren P. Albert,T. Matthew Robson,Feng Zhao,José Ignacio García‐Plazaola,Ingo Ensminger,Paulina A. Rajewicz,Steffen Grebe,Mikko Tikkanen,James R. Kellner,Janne A. Ihalainen,Uwe Rascher,Barry A. Logan
出处
期刊:Nature plants
[Springer Nature]
日期:2021-08-09
卷期号:7 (8): 998-1009
被引量:150
标识
DOI:10.1038/s41477-021-00980-4
摘要
For decades, the dynamic nature of chlorophyll a fluorescence (ChlaF) has provided insight into the biophysics and ecophysiology of the light reactions of photosynthesis from the subcellular to leaf scales. Recent advances in remote sensing methods enable detection of ChlaF induced by sunlight across a range of larger scales, from using instruments mounted on towers above plant canopies to Earth-orbiting satellites. This signal is referred to as solar-induced fluorescence (SIF) and its application promises to overcome spatial constraints on studies of photosynthesis, opening new research directions and opportunities in ecology, ecophysiology, biogeochemistry, agriculture and forestry. However, to unleash the full potential of SIF, intensive cross-disciplinary work is required to harmonize these new advances with the rich history of biophysical and ecophysiological studies of ChlaF, fostering the development of next-generation plant physiological and Earth-system models. Here, we introduce the scale-dependent link between SIF and photosynthesis, with an emphasis on seven remaining scientific challenges, and present a roadmap to facilitate future collaborative research towards new applications of SIF. Remote sensing methods enable detection of solar-induced chlorophyll a fluorescence. However, to unleash the full potential of this signal, intensive cross-disciplinary work is required to harmonize biophysical and ecophysiological studies.
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