In June 2019, fieldwork was carried out at Abisko, Sweden, approximately 200 km north of the Arctic Circle, over a three week period. Field measurements were conducted at three separate field sites, each representing different arctic vegetation communities, including a wetland site at the Stordalen Mire flux tower (Rubus chamaemorus, Vaccinium vitis-idaea) a deciduous broadleaf site (Betula pubescens) and dwarf shrub site (Betula nana, Salix spp.). We carried out simultaneous measurements of: i) leaf photosynthesis, ii) solar-induced chlorophyll fluorescence (SIF) which is an optical measure of light re-emitted from chlorophyll molecules, and iii) photochemical reflectance (PRI) which is a spectral vegetation index that provides information on the thermal dissipation of excess energy by leaves. These measurements, which represent the different possible pathways for light once it is absorbed by leaf, were collected at 1 minute sampling intervals, for the different Arctic plant species. Additional sampling surveys were also conducted, for leaf chlorophyll content, leaf nitrogen content, “Pulse Amplitude Modulation” (PAM) fluorescence (which measures the efficiency of photosynthetic machinery) and leaf photosynthetic capacity measurements.
The key findings from this work were that:
1) Leaf chlorophyll content shows a strong, consistent relationship with Vcmax25 across all sampled arctic plant functional types.
2) Simultaneous measurements of leaf photosynthesis, SIF and PRI showed that the SIF-photosynthesis relationship varies according to if the plant is light saturated.
There has been considerable interest in using SIF as a direct proxy for photosynthesis, with strong, linear results reported at coarse spatial and temporal scales. However, results from this study demonstrate that at minute time-steps, the relationship between SIF and leaf-level photosynthesis is non-linear, as excess light that is not used in photosynthesis is variably partitioned to both fluorescence and heat dissipation pathways. Results also showed a consistent, strong relationship between leaf chlorophyll content and the maximum leaf photosynthetic capacity, across all species and vegetation types. This finding has significant implications for improving modelled estimates of photosynthesis by using leaf chlorophyll as a proxy for photosynthetic capacity, a key parameter in terrestrial biosphere models. The results have been disseminated to the wider scientific community through a presentation at the American Geophysical Union 2019 Fall meeting, and to the general public in a series of blog posts and an article in the INTERACT Stories of Arctic Science II book in 2020.