Flexible foliar stoichiometry reduces the magnitude of the global land carbon sink

Increased plant growth under elevated carbon dioxide (CO2) slows the pace of climate warming and underlies projections of terrestrial carbon (C) and climate dynamics. However, this important ecosystem service may be diminished by concurrent changes to vegetation carbon-to-nitrogen (C:N) ratios. Despite clear observational evidence of increasing foliar C:N under elevated CO2, our understanding of potential ecological consequences of foliar stoichiometric flexibility is incomplete. Here, we illustrate that when we incorporated CO2-driven increases in foliar stoichiometry into the Community Land Model the projected land C sink decreased two-fold by the end of the century compared to simulations with fixed foliar chemistry. Further, CO2-driven increases in foliar C:N profoundly altered Earth's hydrologic cycle, reducing evapotranspiration and increasing runoff, and reduced belowground N cycling rates. These findings underscore the urgency of further research to examine both the direct and indirect effects of changing foliar stoichiometry on soil N cycling and plant productivity.

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Related Links

Related Dataset #1 : SPRUCE Plant Tissue Analyses from Experimental Plots Beginning 2017

Related Dataset #2 : Biomass Inventories at Harvard Forest EMS Tower since 1993

Related Dataset #3 : PEC01 Elemental chemistry of plant tissue collected for the Konza LTER aboveground plant biomass on Konza Prairie core watersheds

Related Software #1 : emhauser/FlexibleFoliarCN: Flexible foliar stoichiometry reduces the magnitude of the global land carbon sink

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Author Hauser, E.
Wieder, William
Bonan, Gordon B.
Cleveland, C. C.
Publisher UCAR/NCAR - Library
Publication Date 2023-11-16T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T15:12:46.249359
Metadata Record Identifier edu.ucar.opensky::articles:26753
Metadata Language eng; USA
Suggested Citation Hauser, E., Wieder, William, Bonan, Gordon B., Cleveland, C. C.. (2023). Flexible foliar stoichiometry reduces the magnitude of the global land carbon sink. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d77w6h9s. Accessed 10 August 2025.

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