Evidence from the real world: 15N natural abundances reveal enhanced nitrogen use at high plant diversity in Central European grasslands
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M. Fischer | D. Prati | N. Hölzel | V. Klaus | T. Kleinebecker | Barbara Schmitt | Valentin H. Klaus
[1] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[2] S. Boch,et al. Direct and indirect associations between plant species richness and productivity in grasslands : regional differences preclude simple generalization of productivity-biodiversity relationships , 2013 .
[3] P. Högberg,et al. Nitrogen isotopes link mycorrhizal fungi and plants to nitrogen dynamics. , 2012, The New phytologist.
[4] C. Leuschner,et al. The diversity–productivity relationship in a permanent temperate grassland: negative diversity effect, dominant influence of management regime , 2012 .
[5] S. Naeem,et al. The Functions of Biological Diversity in an Age of Extinction , 2012, Science.
[6] Carsten F. Dormann,et al. A quantitative index of land-use intensity in grasslands: Integrating mowing, grazing and fertilization , 2012 .
[7] C. Werner,et al. Community scale 15N isoscapes: tracing the spatial impact of an exotic N2 -fixing invader. , 2012, Ecology letters.
[8] N. Wrage,et al. Response of nitrogen oxide emissions to grazer species and plant species composition in temperate agricultural grassland , 2012 .
[9] E. Schulze,et al. Nitrogen uptake by grassland communities: contribution of N2 fixation, facilitation, complementarity, and species dominance , 2012, Plant and Soil.
[10] J. Craine,et al. Community traitscape of foliar nitrogen isotopes reveals N availability patterns in a tallgrass prairie , 2012, Plant and Soil.
[11] N. Hölzel,et al. Reducing Sample Quantity and Maintaining High Prediction Quality of Grassland Biomass Properties with near Infrared Reflectance Spectroscopy , 2011 .
[12] N. Blüthgen,et al. Nutrient concentrations and fibre contents of plant community biomass reflect species richness patterns along a broad range of land-use intensities among agricultural grasslands , 2011 .
[13] E. Schulze,et al. Foliar and soil δ15N values reveal increased nitrogen partitioning among species in diverse grassland communities. , 2011, Plant, cell & environment.
[14] N. Hölzel,et al. Effects of grazing on seasonal variation of aboveground biomass quality in calcareous grasslands , 2011, Plant Ecology.
[15] Amy E. Miller,et al. Niche complementarity due to plasticity in resource use: plant partitioning of chemical N forms. , 2010, Ecology.
[16] Jens Nieschulze,et al. Implementing large-scale and long-term functional biodiversity research: The Biodiversity Exploratories , 2010 .
[17] F. Esteves,et al. The prominence of and biases in biodiversity and ecosystem functioning research , 2010, Biodiversity and Conservation.
[18] Nina Buchmann,et al. Plant species richness and functional composition drive overyielding in a six-year grassland experiment. , 2009, Ecology.
[19] J. Emmett Duffy. Why biodiversity is important to the functioning of real‐world ecosystems , 2009 .
[20] C. Werner,et al. 15N natural abundance during early and late succession in a middle-European dry acidic grassland. , 2009, Plant biology.
[21] J. Schellberg,et al. Long-term changes of the δ15N natural abundance of plants and soil in a temperate grassland , 2009, Plant and Soil.
[22] W. Wanek,et al. Foliar δ15N values characterize soil N cycling and reflect nitrate or ammonium preference of plants along a temperate grassland gradient , 2008, Oecologia.
[23] I. Anderson,et al. Nitrogen isotope composition of soils, C3 and C4 plants along land use gradients in southern Africa , 2008 .
[24] W. Wanek,et al. Shift in soil–plant nitrogen dynamics of an alpine–nival ecotone , 2007, Plant and Soil.
[25] M. Scherer‐Lorenzen. Biodiversity and Ecosystem Functioning : Basic Principles , 2007 .
[26] Bradley J. Cardinale,et al. Effects of biodiversity on the functioning of trophic groups and ecosystems , 2006, Nature.
[27] B. Emmett,et al. Regional Assessment of N Saturation using Foliar and Root $$\varvec {\delta}^{\bf 15}{\bf N}$$ , 2006 .
[28] W. Wanek,et al. Natural 15N abundance of plants and soils under different management practices in a montane grassland , 2006 .
[29] Nina Buchmann,et al. Niche complementarity for nitrogen: an explanation for the biodiversity and ecosystem functioning relationship? , 2006, Ecology.
[30] J. Berry,et al. The stable carbon and nitrogen isotopic composition of vegetation in tropical forests of the Amazon Basin, Brazil , 2006 .
[31] B. Starzomski,et al. What does biodiversity actually do? A review for managers and policy makers , 2007, Biodiversity and Conservation.
[32] L. Schipper,et al. Foliar 15N natural abundance indicates phosphorus limitation of bog species , 2005, Oecologia.
[33] Nina Buchmann,et al. Overyielding in experimental grassland communities - irrespective of species pool or spatial scale , 2005 .
[34] F. Chapin,et al. EFFECTS OF BIODIVERSITY ON ECOSYSTEM FUNCTIONING: A CONSENSUS OF CURRENT KNOWLEDGE , 2005 .
[35] F. Berendse,et al. Diversity-productivity relationships: initial effects, long-term patterns, and underlying mechanisms. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[36] Jan Lepš,et al. What do the biodiversity experiments tell us about consequences of plant species loss in the real world , 2004 .
[37] P. Högberg,et al. 15N abundance of soils and plants along an experimentally induced forest nitrogen supply gradient , 1994, Oecologia.
[38] H. Høgh-jensen,et al. The effect of potassium deficiency on growth and N2-fixation in Trifolium repens , 2003 .
[39] P. D. Ruiter,et al. SPECIES RICHNESS–PRODUCTIVITY PATTERNS DIFFER BETWEEN N‐, P‐, AND K‐LIMITED WETLANDS , 2003 .
[40] A. Troumbis,et al. The role of legumes as a component of biodiversity in a cross‐European study of grassland biomass nitrogen , 2002 .
[41] N. Boatman,et al. Ecological impacts of arable intensification in Europe. , 2001, Journal of environmental management.
[42] Michel Loreau,et al. Partitioning selection and complementarity in biodiversity experiments , 2001, Nature.
[43] M. Adams,et al. Stable Isotopes at Natural Abundance in Terrestrial Plant Ecology and Ecophysiology: An Update , 2001 .
[44] D. Robinson. δ15N as an integrator of the nitrogen cycle , 2001 .
[45] P. Högberg,et al. Tansley Review No. 95 15 N natural abundance in soil-plant systems. , 1997, The New phytologist.
[46] Michael A. Huston,et al. Hidden treatments in ecological experiments: re-evaluating the ecosystem function of biodiversity , 1997, Oecologia.
[47] D. Tilman,et al. Productivity and sustainability influenced by biodiversity in grassland ecosystems , 1996, Nature.
[48] D. Tilman,et al. Component of Plant Competition Along an Experimental Gradient of Nitrogen Availability , 1991 .
[49] Robert W. Howarth,et al. Nitrogen limitation on land and in the sea: How can it occur? , 1991 .
[50] J. Black,et al. Ecosystem Functioning , 1968, Nature.