<rdf:RDF xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dct="http://purl.org/dc/terms/" xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#">
  <rdf:Description rdf:about="https://doi.org/10.5061/dryad.f1b82">
    <dct:isReferencedBy>IMPACT4SOIL</dct:isReferencedBy>
    <dct:isReferencedBy>OpenAire</dct:isReferencedBy>
    <dct:isReferencedBy>Datacite</dct:isReferencedBy>
    <dct:license>unspecified</dct:license>
    <dct:available>2017-03-28</dct:available>
    <dc:description>unspecifiedCellulosic biofuels are intended to improve future energy and climate  security. Nitrogen (N) fertilizer is commonly recommended to stimulate  yields but can increase losses of the greenhouse gas nitrous oxide (N2O)  and other forms of reactive N, including nitrate. We measured soil N2O  emissions and nitrate leaching along a switchgrass (Panicum virgatum) high  resolution N-fertilizer gradient for three years post-establishment.  Results revealed an exponential increase in annual N2O emissions that each  year became stronger (R 2 &amp;gt; 0.9, P &amp;lt; 0.001) and deviated  further from the fixed percentage assumed for IPCC Tier 1 emission  factors. Concomitantly, switchgrass yields became less responsive each  year to N fertilizer. Nitrate leaching (and calculated indirect N2O  emissions) also increased exponentially in response to N inputs, but  neither methane (CH4) uptake nor soil organic carbon changed detectably.  Overall, N fertilizer inputs at rates greater than crop need curtailed the  climate benefit of ethanol production almost two-fold, from a maximum  mitigation capacity of &#8722;5.71 &#177; 0.22 Mg CO2e ha&#8722;1 yr&#8722;1 in switchgrass  fertilized at 56 kg N ha&#8722;1 to only &#8722;2.97 &#177; 0.18 Mg CO2e ha&#8722;1 yr&#8722;1 in  switchgrass fertilized at 196 kg N ha&#8722;1. Minimizing N fertilizer use will  be an important strategy for fully realizing the climate benefits of  cellulosic biofuel production. </dc:description>
    <dc:description>unspecifiedCellulosic biofuels are intended to improve future energy and climate  security. Nitrogen (N) fertilizer is commonly recommended to stimulate  yields but can increase losses of the greenhouse gas nitrous oxide (N2O)  and other forms of reactive N, including nitrate. We measured soil N2O  emissions and nitrate leaching along a switchgrass (Panicum virgatum) high  resolution N-fertilizer gradient for three years post-establishment.  Results revealed an exponential increase in annual N2O emissions that each  year became stronger (R 2 &amp;gt; 0.9, P &amp;lt; 0.001) and deviated  further from the fixed percentage assumed for IPCC Tier 1 emission  factors. Concomitantly, switchgrass yields became less responsive each  year to N fertilizer. Nitrate leaching (and calculated indirect N2O  emissions) also increased exponentially in response to N inputs, but  neither methane (CH4) uptake nor soil organic carbon changed detectably.  Overall, N fertilizer inputs at rates greater than crop need curtailed the  climate benefit of ethanol production almost two-fold, from a maximum  mitigation capacity of &#8722;5.71 &#177; 0.22 Mg CO2e ha&#8722;1 yr&#8722;1 in switchgrass  fertilized at 56 kg N ha&#8722;1 to only &#8722;2.97 &#177; 0.18 Mg CO2e ha&#8722;1 yr&#8722;1 in  switchgrass fertilized at 196 kg N ha&#8722;1. Minimizing N fertilizer use will  be an important strategy for fully realizing the climate benefits of  cellulosic biofuel production. dataset_switchgrassContains data on switchgrass yield, nitrous oxide and methane flux, nitrate leaching, soil inorganic nitrogen content, and soil gravimetric water content for the first three harvest years (2009-2011) plus soil carbon content and soil bulk density at various times over the study period. </dc:description>
    <dc:subject>2. Zero hunger</dc:subject>
    <dc:subject>Switchgrass</dc:subject>
    <dc:subject>Panicum virgatum</dc:subject>
    <dc:subject>13. Climate action</dc:subject>
    <dc:subject>nitrate leaching</dc:subject>
    <dc:subject>IPCC emission factor</dc:subject>
    <dc:subject>methane (CH4) oxidation</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>7. Clean energy</dc:subject>
    <dc:subject>Life cycle analysis</dc:subject>
    <dc:subject>nitrous oxide (N2O)</dc:subject>
    <dc:subject>6. Clean water</dc:subject>
    <dc:subject>nitrogen fertilizer</dc:subject>
    <dc:creator>Ruan, Leilei, Bhardwaj, Ajay K., Hamilton, Stephen K., Robertson, G. Philip, </dc:creator>
    <dc:date>2017-03-28</dc:date>
    <dct:abstract>unspecifiedCellulosic biofuels are intended to improve future energy and climate  security. Nitrogen (N) fertilizer is commonly recommended to stimulate  yields but can increase losses of the greenhouse gas nitrous oxide (N2O)  and other forms of reactive N, including nitrate. We measured soil N2O  emissions and nitrate leaching along a switchgrass (Panicum virgatum) high  resolution N-fertilizer gradient for three years post-establishment.  Results revealed an exponential increase in annual N2O emissions that each  year became stronger (R 2 &amp;gt; 0.9, P &amp;lt; 0.001) and deviated  further from the fixed percentage assumed for IPCC Tier 1 emission  factors. Concomitantly, switchgrass yields became less responsive each  year to N fertilizer. Nitrate leaching (and calculated indirect N2O  emissions) also increased exponentially in response to N inputs, but  neither methane (CH4) uptake nor soil organic carbon changed detectably.  Overall, N fertilizer inputs at rates greater than crop need curtailed the  climate benefit of ethanol production almost two-fold, from a maximum  mitigation capacity of &#8722;5.71 &#177; 0.22 Mg CO2e ha&#8722;1 yr&#8722;1 in switchgrass  fertilized at 56 kg N ha&#8722;1 to only &#8722;2.97 &#177; 0.18 Mg CO2e ha&#8722;1 yr&#8722;1 in  switchgrass fertilized at 196 kg N ha&#8722;1. Minimizing N fertilizer use will  be an important strategy for fully realizing the climate benefits of  cellulosic biofuel production. </dct:abstract>
    <dct:abstract>unspecifiedCellulosic biofuels are intended to improve future energy and climate  security. Nitrogen (N) fertilizer is commonly recommended to stimulate  yields but can increase losses of the greenhouse gas nitrous oxide (N2O)  and other forms of reactive N, including nitrate. We measured soil N2O  emissions and nitrate leaching along a switchgrass (Panicum virgatum) high  resolution N-fertilizer gradient for three years post-establishment.  Results revealed an exponential increase in annual N2O emissions that each  year became stronger (R 2 &amp;gt; 0.9, P &amp;lt; 0.001) and deviated  further from the fixed percentage assumed for IPCC Tier 1 emission  factors. Concomitantly, switchgrass yields became less responsive each  year to N fertilizer. Nitrate leaching (and calculated indirect N2O  emissions) also increased exponentially in response to N inputs, but  neither methane (CH4) uptake nor soil organic carbon changed detectably.  Overall, N fertilizer inputs at rates greater than crop need curtailed the  climate benefit of ethanol production almost two-fold, from a maximum  mitigation capacity of &#8722;5.71 &#177; 0.22 Mg CO2e ha&#8722;1 yr&#8722;1 in switchgrass  fertilized at 56 kg N ha&#8722;1 to only &#8722;2.97 &#177; 0.18 Mg CO2e ha&#8722;1 yr&#8722;1 in  switchgrass fertilized at 196 kg N ha&#8722;1. Minimizing N fertilizer use will  be an important strategy for fully realizing the climate benefits of  cellulosic biofuel production. dataset_switchgrassContains data on switchgrass yield, nitrous oxide and methane flux, nitrate leaching, soil inorganic nitrogen content, and soil gravimetric water content for the first three harvest years (2009-2011) plus soil carbon content and soil bulk density at various times over the study period. </dct:abstract>
    <dc:title>Data from: Nitrogen fertilization challenges the climate benefit of cellulosic biofuels</dc:title>
    <dc:identifier>10.5061/dryad.f1b82</dc:identifier>
    <dc:type>dataset</dc:type>
    <dct:references>https://doi.org/10.5061/dryad.f1b82</dct:references>
  </rdf:Description>
</rdf:RDF>