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      Anthropogenic global shifts in biospheric N and P concentrations and ratios and their impacts on biodiversity, ecosystem productivity, food security, and human health

      1 , 2 , 3 , 4 , 5 , 6 , 1 , 2 , 3
      Global Change Biology
      Wiley

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          An Earth-system perspective of the global nitrogen cycle.

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            The global nitrogen cycle in the twenty-first century.

            Global nitrogen fixation contributes 413 Tg of reactive nitrogen (Nr) to terrestrial and marine ecosystems annually of which anthropogenic activities are responsible for half, 210 Tg N. The majority of the transformations of anthropogenic Nr are on land (240 Tg N yr(-1)) within soils and vegetation where reduced Nr contributes most of the input through the use of fertilizer nitrogen in agriculture. Leakages from the use of fertilizer Nr contribute to nitrate (NO3(-)) in drainage waters from agricultural land and emissions of trace Nr compounds to the atmosphere. Emissions, mainly of ammonia (NH3) from land together with combustion related emissions of nitrogen oxides (NOx), contribute 100 Tg N yr(-1) to the atmosphere, which are transported between countries and processed within the atmosphere, generating secondary pollutants, including ozone and other photochemical oxidants and aerosols, especially ammonium nitrate (NH4NO3) and ammonium sulfate (NH4)2SO4. Leaching and riverine transport of NO3 contribute 40-70 Tg N yr(-1) to coastal waters and the open ocean, which together with the 30 Tg input to oceans from atmospheric deposition combine with marine biological nitrogen fixation (140 Tg N yr(-1)) to double the ocean processing of Nr. Some of the marine Nr is buried in sediments, the remainder being denitrified back to the atmosphere as N2 or N2O. The marine processing is of a similar magnitude to that in terrestrial soils and vegetation, but has a larger fraction of natural origin. The lifetime of Nr in the atmosphere, with the exception of N2O, is only a few weeks, while in terrestrial ecosystems, with the exception of peatlands (where it can be 10(2)-10(3) years), the lifetime is a few decades. In the ocean, the lifetime of Nr is less well known but seems to be longer than in terrestrial ecosystems and may represent an important long-term source of N2O that will respond very slowly to control measures on the sources of Nr from which it is produced.
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              Performance Comparisons of Co-Occurring Native and Alien Invasive Plants: Implications for Conservation and Restoration

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                Author and article information

                Journal
                Global Change Biology
                Glob Change Biol
                Wiley
                1354-1013
                1365-2486
                April 2020
                April 2020
                : 26
                : 4
                : 1962-1985
                Affiliations
                [1 ]CSIC Global Ecology Unit CREAF‐CSIC‐UAB Bellaterra Spain
                [2 ]CREAF Cerdanyola del Valles Spain
                [3 ]Global Change Research Institute Czech Academy of Sciences Brno Czech Republic
                [4 ]Research Group Plants and Ecosystems (PLECO) Department of Biology University of Antwerp Wilrijk Belgium
                [5 ]Laboratoire des Sciences du Climat et de l'Environnement IPSL CEA CNRS UVSQ UPSACLAY Gif‐sur‐Yvette France
                [6 ]Ecosystems Services and Management International Institute for Applied Systems Analysis (IIASA) Laxenburg Austria
                Article
                10.1111/gcb.14981
                31912629
                103d050f-e4df-4395-a8e3-d497c7f8a16a
                © 2020

                http://onlinelibrary.wiley.com/termsAndConditions#vor

                http://doi.wiley.com/10.1002/tdm_license_1.1

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