EGU21-13322, updated on 04 Mar 2021
https://doi.org/10.5194/egusphere-egu21-13322
EGU General Assembly 2021
© Author(s) 2021. This work is distributed under
the Creative Commons Attribution 4.0 License.

Exploring the diurnal cycle of Δ17O in CO2 at the ecosystem level

Gerbrand Koren1, Getachew A. Adnew2, Jordi Vilà-Guerau de Arellano1, Michiel K. van der Molen1, Bart Kruijt3, Thomas Röckmann2, and Wouter Peters1,4
Gerbrand Koren et al.
  • 1Meteorology and Air Quality Group (MAQ), Wageningen University and Research, Wageningen, The Netherlands
  • 2Institute for Marine and Atmospheric Research Utrecht (IMAU), Utrecht University, Utrecht, The Netherlands
  • 3Water Systems and Global Change (WSG), Wageningen University and Research, Wageningen, The Netherlands
  • 4Centre for Isotope Research (CIO), University of Groningen, Groningen, The Netherlands

The triple oxygen isotope signature Δ17O in atmospheric CO2 is a potential tracer for gross primary production (GPP). However, interpretation of Δ17O in atmospheric CO2 is complicated by the contributions from respired CO2, isotopic exchange with soil and ocean water, and the release of CO2 by fossil fuel combustion and biomass burning. We studied Δ17O in CO2 at the ecosystem level, which is the domain that integrates the contributions from vegetation and soil to the atmospheric signal.  

We report for the first time the observed diurnal variation of Δ17O in CO2, measured from air samples collected on 15-16 August 2019 at the mid-latitude pine forest Loobos (ICOS L2 ecosystem site). We also measured the isotopic signatures δ13C and δ18O in CO2 close to the surface (at 0.5 m height, inside the canopy) and from the top of the tower (1-2 m above the canopy). To support the interpretation of the measurements, we used a land-atmosphere model that satisfactorily reproduces the diurnal variability of the interaction between leaf/canopy and the convective boundary layer using mixed-layer theory assumptions (CLASS). Also, we used the global atmospheric transport model TM5 to (1) quantify the contribution of different sources that affect Δ17O in CO2 at Loobos; and (2) extend our analysis of the diurnal cycle to the global scale.  

Our methodology demonstrates the added value of isotope measurements at ICOS ecosystem and tall-tower sites, and how to integrate meteorological and ecological observations from the canopy up to the atmospheric boundary layer. This study contributes to our ongoing effort of creating an overview of different methods for quantifying photosynthesis from a top-down perspective (concentration-based methods and remote sensing) in a review paper for which we are open to other contributions. 

How to cite: Koren, G., Adnew, G. A., Vilà-Guerau de Arellano, J., van der Molen, M. K., Kruijt, B., Röckmann, T., and Peters, W.: Exploring the diurnal cycle of Δ17O in CO2 at the ecosystem level, EGU General Assembly 2021, online, 19–30 Apr 2021, EGU21-13322, https://doi.org/10.5194/egusphere-egu21-13322, 2021.