The biodiversity - N cycle relationship: a 15N tracer experiment with soil from plant mixtures of varying diversity to model N pool sizes and transformation rates

被引:0
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作者
Soni Lama
Thomas Kuhn
Moritz F. Lehmann
Christoph Müller
Odette Gonzalez
Nico Eisenhauer
Markus Lange
Stefan Scheu
Yvonne Oelmann
Wolfgang Wilcke
机构
[1] Karlsruhe Institute of Technology (KIT),Institute of Geography and Geoecology
[2] University of Basel,Department of Environmental Sciences
[3] Justus Liebig University Giessen,Institute of Plant Ecology
[4] University College Dublin,School of Biology and Environmental Science and Earth Institute
[5] University of Göttingen,JF Blumenbach Institute of Zoology and Anthropology
[6] Leipzig University,Institute of Biology
[7] German Center for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig,Department of Biogeochemical Processes
[8] Max Planck Institute for Biogeochemistry,Geoecology
[9] University of Tübingen,undefined
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关键词
model; Laboratory microcosms; Gross N transformation rates; Plant diversity; The Jena Experiment;
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摘要
We conducted a 15N tracer experiment in laboratory microcosms with field-fresh soil samples from a biodiversity experiment to evaluate the relationship between grassland biodiversity and N cycling. To embrace the complexity of the N cycle, we determined N exchange between five soil N pools (labile and recalcitrant organic N, dissolved NH4+ and NO3− in soil solution, and exchangeable NH4+) and eight N transformations (gross N mineralization from labile and recalcitrant organic N, NH4+ immobilization into labile and recalcitrant organic N, autotrophic nitrification, heterotrophic nitrification, NO3− immobilization, adsorption of NH4+) expected in aerobic soils with the help of the N-cycle model Ntrace. We used grassland soil of the Jena Experiment, which includes plant mixtures with 1 to 60 species and 1 to 4 functional groups (legumes, grasses, tall herbs, small herbs). The 19 soil samples of one block of the Jena Experiment were labeled with either 15NH4+ or 15NO3- or both. In the presence of legumes, gross N mineralization and autotrophic nitrification increased significantly because of higher soil N concentrations in legume-containing plots and high microbial activity. Similarly, the presence of grasses significantly increased the soil NH4+ pool, gross N mineralization, and NH4+ immobilization, likely because of enhanced microbial biomass and activity by providing large amounts of rhizodeposits through their dense root systems. In our experiment, previously reported plant species richness effects on the N cycle, observed in a larger-scale field experiment within the Jena Experiment, were not seen. However, specific plant functional groups had a significant positive impact on the N cycling in the incubated soil samples.
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页码:1047 / 1061
页数:14
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