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The relationship between the ratio of far-red to red leaf SIF and leaf chlorophyll content: Theoretical derivation and experimental validation

Remote Sensing of Environment · 1 Jan 2025

Abstract

Leaf chlorophyll content (LCC) is an important indicator of photosynthetic capacity. Sun-induced chlorophyll fluorescence (SIF) is an optical signal emitted from the leaf interior, providing a unique technique for accurately estimating LCC. The far-red to red ratio of chlorophyll fluorescence (Fᵣₐₜᵢₒ) has been used to empirically estimate LCC in some previous studies. While these studies support the use of the Fᵣₐₜᵢₒ for LCC estimation, its theoretical underpinning remains less well-defined and its effectiveness across a wider range of scenarios remains unclear. In this study, we established the relationship between the Fᵣₐₜᵢₒ and LCC using the light use efficiency (LUE)-based SIF model and spectral invariant radiative transfer theory. Firstly, the LUE-based SIF model demonstrates that the change in the leaf Fᵣₐₜᵢₒ is controlled by the ratio of the fluorescence escape fraction (i.e., fₑₛc from the photosystem to the leaf surface) at the corresponding bands. Secondly, a fₑₛc modeling approach is presented using the spectral invariant theory and thus the fₑₛc ratio is linked to LCC. Theoretical analysis shows that the Fᵣₐₜᵢₒ has a strong correlation with LCC, which explains over 90 % of the variation in Fᵣₐₜᵢₒ. Both experimental measurements and model simulations from a radiative transfer model Fluspect were used to validate the relationship between LCC and three Fᵣₐₜᵢₒ (i.e., Fratio↑, Fratio↓ and Fratiotot), which were derived from the upward and downward SIF of leaves, as well as the total SIF observed from both sides. The Fluspect simulations were used to assess the sensitivity of the Fᵣₐₜᵢₒ-LCC relationship to the leaf structure. Two types of experimental measurements, including the field measurements of three crops and the laboratory measurements of 20 tundra plants, were employed to examine the species dependence of the Fᵣₐₜᵢₒ-LCC relationship. The performance of Fᵣₐₜᵢₒ for LCC estimation was evaluated and compared with spectral indices and the PROSPECT model using the experimental measurements and leave-one-out cross-validation (LOOCV) approach. Both the Fluspect simulations and the experimental measurements indicate that the Fᵣₐₜᵢₒ is strongly correlated with LCC for a wide range of leaf scenarios. The Fᵣₐₜᵢₒ-LCC relationship remains relatively stable across different leaf structures and plant species, since the relationship is almost consistent. The LOOCV of experimental measurements shows that the Fᵣₐₜᵢₒ provides promising and robust LCC estimates, with the Fratiotot performing the best. The Fratiotot outperforms spectral indices, reducing the RMSE for LCC estimation by 19.5 %-93.9 %. Furthermore, compared to the PROSPECT model, the Fᵣₐₜᵢₒ achieves a reduction in RMSE by 30.4 %-77.8 %. These results demonstrate that the Fᵣₐₜᵢₒ is effective for estimating LCC of diverse plant species. This study advances our understanding of the relationship between the Fᵣₐₜᵢₒ and LCC, supporting the use of SIF signals for remote sensing of LCC.

Plant phenotyping relevance

SIFの遠赤色/赤色比から葉クロロフィル含量を推定する理論・測定手法を開発し、放射伝達シミュレーションと複数植物種の実測で検証しており、植物形質取得が中心である。

abstractSun-induced chlorophyll fluorescence (SIF) is an optical signal emitted from the leaf interior, providing a unique technique for accurately estimating LCC.
abstractBoth experimental measurements and model simulations from a radiative transfer model Fluspect were used to validate the relationship between LCC and three Fᵣₐₜᵢₒ
abstractThe performance of Fᵣₐₜᵢₒ for LCC estimation was evaluated and compared with spectral indices and the PROSPECT model using the experimental measurements and leave-one-out cross-validation (LOOCV) approach.

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