Soil carbon storage controlled by interactions between geochemistry and climate (original) (raw)
References
Carvalhais, N. et al. Global covariation of carbon turnover times with climate in terrestrial ecosystems. Nature514, 213–217 (2014). Article Google Scholar
Shao, P., Zeng, Z., Moore, D. J. P. & Zeng, X. Soil microbial respiration from observations and earth system models. Environ. Res. Lett.8, 034034 (2013). Article Google Scholar
Davidson, E. A. & Janssens, I. A. Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature440, 165–173 (2006). Article Google Scholar
Nie, M. et al. Positive climate feedbacks of soil microbial communities in a semi-arid grassland. Ecol. Lett.16, 234–241 (2013). Article Google Scholar
Karhu, K. et al. Temperature sensitivity of soil respiration rates enhanced by microbial community response. Nature513, 81–84 (2014). Article Google Scholar
Feng, X., Simpson, A. J., Wilson, K. P., Williams, D. D. & Simpson, M. J. Increased cuticular carbon sequestration and lignin oxidation in response to soil warming. Nature Geosci.1, 836–839 (2008). Article Google Scholar
Chen, S., Huang, Y., Zou, J. & Shi, Y. Mean residence time of global topsoil organic carbon depends on temperature, precipitation and soil nitrogen. Glob. Planet. Change100, 99–108 (2013). Article Google Scholar
Sulman, B. N., Phillips, R. P., Oishi, A. C., Shevliakova, E. & Pacala, S. W. Microbe-driven turnover offsets mineral-mediated storage of soil carbon under elevated CO2 . Nature Clim. Change4, 1099–1102 (2014). Article Google Scholar
Tang, J. & Riley, W. J. Weaker soil carbon-climate feedbacks resulting from microbial and abiotic interactions. Nature Clim. Change5, 56–60 (2015). Article Google Scholar
Torn, M. S., Trumbore, S. E., Chadwick, O. A., Vitousek, P. M. & Hendricks, D. M. Mineral control of soil organic carbon storage and turnover. Nature389, 170–173 (1997). Article Google Scholar
Trumbore, S. E. & Torn, M. S. in Soils and Global Change (ed. Holland, E. A.) 1–34 (NATO Advanced Study Institute, 2003). Google Scholar
Norton, K. P., Molnar, P. & Schlunegger, F. The role of climate-driven chemical weathering on soil production. Geomorphology204, 510–517 (2014). Article Google Scholar
Ruiz, I. Praderas Para Chile [in Spanish] (Ministerio de Agricultura, 1996). Google Scholar
Barcikowski, A., Lyżwtníska, R. & Zarzycki, K. Growth rate and biomass production of Deschampsia antarctica Desv. in the Admiralty Bay region, South Shetland Islands, Antarctica. Pol. Polar Res.20, 301–311 (1999). Google Scholar
Dosseto, A., Buss, H. L. & Suresh, P. O. Rapid regolith formation over volcanic bedrock and implications for landscape evolution. Earth Planet. Sci. Lett.337–338, 47–55 (2012). Article Google Scholar
Goudie, A. S. & Viles, H. in Quaternary and Recent Processes and Forms Vol. 4 (eds Burt, T. P., Chorley, R. J., Brunsden, D., Cox, N. J. & Goudie, A. S.) 129–164 (Geological Society of London, 2008). Google Scholar
Gislason, S. R. et al. Direct evidence of the feedback between climate and weathering. Earth Planet. Sci. Lett.277, 213–222 (2009). Article Google Scholar
Riley, W. J. et al. Long residence times of rapidly decomposable soil organic matter: Application of a multi-phase, multi-component, and vertically-resolved model (BAMS1) to soil carbon dynamics. Geosci. Model Dev.7, 1335–1355 (2014). Article Google Scholar
Six, J., Conant, R. T., Paul, E. A. & Paustian, K. Stabilization mechanisms of soil organic matter: Implications for C-saturation of soils. Plant Soil241, 155–176 (2002). Article Google Scholar
von Luetzow, M. et al. Stabilization of organic matter in temperate soils, mechanisms and their relevance under different soil conditions—a review. Eur. J. Soil Sci.57, 426–445 (2006). Article Google Scholar
Zhou, T., Phi, P., Hui, D. & Luo, Y. Global pattern of temperature sensitivity of soil heterotrophic respiration and its implications for carbon-climate feedback. J. Geophys. Res.114, G02016 (2009). Google Scholar
Bannister, J. R., Vidal, O. J., Teneb, E. & Sandoval, V. Latitudinal patterns and regionalization of plant diversity along a 4270-km gradient in continental Chile. Aust. Ecol.37, 500–509 (2012). Article Google Scholar
Xu, X., Zhou, Y., Ruan, H., Luo, Y. & Wang, J. Temperature sensitivity increases with soil organic carbon recalcitrance along an elevational gradient in the Wuyi Mountains, China. Soil Biol. Biochem.42, 1811–1815 (2010). Article Google Scholar
Hijmans, R. J., Cameron, S. E., Parra, J. L., Jones, P. G. & Jarvis, A. Very high resolution interpolated climate surfaces for global land areas. Int. J. Climatol.25, 1965–1978 (2005). Article Google Scholar
Mardones, M. in Historia, Biodiversidad y Ecología de los Bosques Costeros de Chile [in Spanish] (eds Smith-Ramirez, C., Armesto, J. & Valdovinos, C.) 39–59 (Editorial Universitaria, 2005). Google Scholar
Luebert, F. & Pliscoff, P. Sinopsis Bioclimática y Vegetacional de Chile [in Spanish] (Editorial Universitaria, 2006). Google Scholar
Hendershot, W. H., Lalande, H. & Duquette, M. in Soil Sampling and Methods of Analysis (ed. Carter, M. R.) 167–176 (Lewis Publishers, 1993). Google Scholar
Bouyoucos, G. J. Hydrometer method improved for making particle size analysis of soils. Agron. J.54, 464–465 (1962). Article Google Scholar
Herbillon, A. J. in Proc. 8th Int. Soil Classification Workshop (eds Beinroth, F. H., Camargo, M. N. & Eswaran, H.) 39–48 (EMBRAPA-SNLCS, 1986). Google Scholar
Paul, E. A., Morris, S. J. & Boehm, S. in Assessment Methods for Soil Carbon (Advances in Soil Science) (eds Lal, R., Kimble, J. M., Follett, R. F. & Stewart, B. A.) 193–206 (CRC/Lewis Publishers, 2001). Google Scholar
Stewart, C. E., Paustian, K., Plante, A. F., Conant, R. T. & Six, J. Soil carbon saturation: Linking concept and measurable carbon pools. Soil Sci. Soc. Am. J.72, 379–392 (2008). Article Google Scholar
Zimmermann, M., Leitfeld, J., Abiven, S., Schmidt, M. W. I. & Fuhrer, J. Sodium hypochlorite separates an older soil organic matter fraction than acid hydrolysis. Geoderma139, 171–179 (2007). Article Google Scholar
Mikutta, R. & Kaiser, K. Organic matter bound to mineral surfaces: Resistance to chemical and biological oxidation. Soil Biol. Biochem.43, 1738–1741 (2011). Article Google Scholar
R Core Team, R: A Language and Environment for Statistical Computing (R Foundation for Statistical Computing, 2014); http://www.R-project.org Google Scholar
Quinlan, J. R. Proc. 5th Austral. Join. Con. Art. Intel. 343–348 (World Scientific, 1992). Google Scholar
Hastie, T., Tibshirani, R. & Friedman, J. The Elements of Statistical Learning (Springer, 2009). Book Google Scholar