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Re-absorption and scattering of chlorophyll fluorescence in canopies: A revised approach

机译:檐篷中叶绿素荧光的再吸收和散射:修订方法

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摘要

The measurement of chlorophyll fluorescence in remote way represents a tool that is becoming increasingly important in relation to the diagnosis of plant health and carbon budget on the planet. However, the detection of this emission is severely affected by distortions, due to processes of light re-absorption both in the leaf and in the canopy. Even though some advances have been made to correct the signal in the far-red, the whole spectral range needs to be addressed, in order to accurately assess plant physiological state. In 2018, we introduced a model to obtain fluorescence spectra at leaf level, from what was observed at canopy level. In this present work, we publish a revision of that physical model, with a more rigorous and exact mathematical treatment. In addition, multiple scattering between the soil and the canopy, and the fraction of land covered by vegetation have also been taken into consideration. We validate this model upon experimental measures, in three types of crops of agronomic interest (Pea, Rye grass and Maize) with different architecture. Our model accurately predicts both the shape of fluorescence spectra at leaf level from that measured at canopy level and the fluorescence ratio. Furthermore, not only do we eliminate artifacts affecting the spectral shape, but we are also able to calculate the quantum yield of fluorescence corrected for re-absorption, from the experimental quantum yield at canopy level. This represents an advance in the study of these systems because it offers the opportunity to make corrections for both the fluorescence ratio and the intensity of the observed fluorescence.
机译:偏远途径中叶绿素荧光的测量代表了一种在地球上植物健康和碳预算的诊断越来越重要的工具。然而,由于叶片和冠层中的光再吸收过程,对这种发射的检测受到严重影响。尽管已经进行了一些进展来纠正远红色中的信号,但需要解决整个光谱范围,以便准确评估植物生理状态。在2018年,我们介绍了一种模型,以获得叶子水平的荧光光谱,从冠层水平观察到。在本工作中,我们发布了对该物理模型的修订,具有更严格和精确的数学待遇。此外,还考虑了土壤和冠层之间的多次散射,以及植被覆盖的土地的一部分。我们在实验措施中验证了该模型,采用不同架构的农艺兴趣(豌豆,黑麦草和玉米)的三种作物。我们的模型从在冠层水平和荧光比下测量的叶子水平的精确预测荧光光谱的形状。此外,不仅我们消除了影响光谱形状的伪像,但是我们还能够计算校正荧光校正的量子产率,从冠层水平的实验量子产率来看。这代表了对这些系统的研究的进步,因为它提供了对荧光比和观察到的荧光的强度进行校正的机会。

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