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  Beyond clay: towards an improved set of variables for predicting soil organic matter content

Rasmussen, C., Heckman, K., Wieder, W. R., Keiluweit, M., Lawrence, C. R., Berhe, A. A., et al. (2018). Beyond clay: towards an improved set of variables for predicting soil organic matter content. Biogeochemistry, 137(3), 297-306. doi:10.1007/s10533-018-0424-3.

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BGC2813.pdf (Publisher version), 810KB
 
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BGC2813s1.pdf (Supplementary material), 2MB
 
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 Creators:
Rasmussen, Craig, Author
Heckman, Katherine, Author
Wieder, William R., Author
Keiluweit, Marco, Author
Lawrence, Corey R., Author
Berhe, Asmeret Asefaw, Author
Blankinship, Joseph C., Author
Crow, Susan E., Author
Druhan, Jennifer L., Author
Pries, Caitlin E. Hicks, Author
Marin-Spiotta, Erika, Author
Plante, Alain F., Author
Schadel, Christina, Author
Schimel, Joshua P., Author
Sierra, Carlos1, Author           
Thompson, Aaron, Author
Wagai, Rota, Author
Affiliations:
1Quantitative Ecosystem Ecology, Dr. C. Sierra, Department Biogeochemical Processes, Prof. S. E. Trumbore, Max Planck Institute for Biogeochemistry, Max Planck Society, ou_1497777              

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 Abstract: Improved quantification of the factors controlling soil organic matter (SOM) stabilization at continental to global scales is needed to inform projections of the largest actively cycling terrestrial carbon pool on Earth, and its response to environmental change. Biogeochemical models rely almost exclusively on clay content to modify rates of SOM turnover and fluxes of climate-active CO2 to the atmosphere. Emerging conceptual understanding, however, suggests other soil physicochemical properties may predict SOM stabilization better than clay content. We addressed this discrepancy by synthesizing data from over 5,500 soil profiles spanning continental scale environmental gradients. Here, we demonstrate that other physicochemical parameters are much stronger predictors of SOM content, with clay content having relatively little explanatory power. We show that exchangeable calcium strongly predicted SOM content in water-limited, alkaline soils, whereas with increasing moisture availability and acidity, iron- and aluminum-oxyhydroxides emerged as better predictors, demonstrating that the relative importance of SOM stabilization mechanisms scales with climate and acidity. These results highlight the urgent need to modify biogeochemical models to better reflect the role of soil physicochemical properties in SOM cycling.

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 Dates: 2018-01-272018-02-032018-03
 Publication Status: Issued
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 Identifiers: Other: BGC2813
DOI: 10.1007/s10533-018-0424-3
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Title: Biogeochemistry
Source Genre: Journal
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Publ. Info: Dordrecht : M. Nijhoff/Dr W. Junk Publishers
Pages: - Volume / Issue: 137 (3) Sequence Number: - Start / End Page: 297 - 306 Identifier: ISSN: 0168-2563
CoNE: https://pure.mpg.de/cone/journals/resource/954925484702