<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/10.1016/j.geoderma.2010.12.017">
    <dct:isReferencedBy>IMPACT4SOIL</dct:isReferencedBy>
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    <dct:isReferencedBy>Bielefeld Academic Search Engine (BASE)</dct:isReferencedBy>
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    <dct:isReferencedBy>Microsoft Academic Graph</dct:isReferencedBy>
    <dct:isPartOf>Geoderma</dct:isPartOf>
    <dct:license>Open Access</dct:license>
    <dct:created>2011-02-01</dct:created>
    <dc:description>Abstract   We studied the biochemical and biophysical processes of carbon sequestration in an intensive agroforestry system on two soils (Feralsol &#8211; Luero; Arenosol &#8211; Teso) in W. Kenya to elucidate the mechanisms associated with long-term carbon storage. Specifically, we looked at a top-down model (macro-aggregates form around organic matter particles and micro-aggregates form within the macro-aggregates) and a bottom-up model (micro-aggregates form independently and are incorporated into macro-aggregates) of soil aggregate formation. Soil samples were collected from experiments on improved tree fallows using different species and two tillage treatments; water-stable aggregates were extracted and sorted into three size classes: macro-aggregates (&gt;&#160;212&#160;&#956;m), meso-aggregates (53&#8211;212&#160;&#956;m) and micro-aggregates (20&#8211;53&#160;&#956;m). Organic matter characterization of each fraction was based on 13C isotope abundance, Fourier transform infrared (FTIR) spectroscopy and the abundance of polysaccharides. Improved fallows increased soil C by 0.28 and 0.26&#160;kg m&#173;2 in the top 20&#160;cm of the soil profile in Luero and Teso, respectively. Tillage altered the distribution of aggregates among size classes. Changes in the &#948;13C signature in each fraction indicated that more of the new carbon was found in the macro-aggregates (35&#8211;70%) and meso-aggregates (18&#8211;49%) in Luero and less (9&#8211;17%) was found in the micro-aggregates. In Teso, about 40&#8211;80% of the new aggregate C was found in the meso-aggregates, 14&#8211;45% was found in the micro-aggregates and only 4&#8211;26% was found in the macro-aggregates. The meso-aggregates and macro-aggregates to a lesser extent, in both sites, were enriched in carboxylic-C and aromatic-C, indicating the importance of OM decomposition and plant-derived C in the stabilization of larger aggregates, supporting the top-down model of aggregate formation. Microbially derived polysaccharides play a leading role in the formation of stable micro-aggregates and carboxylic-C promotes stabilization through surface occlusion. This bottom-up process is essential to promote long-term carbon sequestration in soils. Additionally, the micro-aggregates at both sites were enriched in polysaccharides and had elevated ratios of galactose + mannose:arabinose + xylose than the other aggregate fractions, indicating the importance of microbial processes in the formation of stable micro-aggregates and supporting the bottom-up model.</dc:description>
    <dc:subject>Carbon sequestration</dc:subject>
    <dc:subject>2. Zero hunger</dc:subject>
    <dc:subject>Aggregates</dc:subject>
    <dc:subject>fallow</dc:subject>
    <dc:subject>C-13</dc:subject>
    <dc:subject>carbon</dc:subject>
    <dc:subject>Carbohydrates</dc:subject>
    <dc:subject>04 agricultural and veterinary sciences</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>540</dc:subject>
    <dc:subject>630</dc:subject>
    <dc:subject>6. Clean water</dc:subject>
    <dc:subject>soil</dc:subject>
    <dc:subject>Improved</dc:subject>
    <dc:subject>FTIR</dc:subject>
    <dc:subject>13. Climate action</dc:subject>
    <dc:subject>0401 agriculture, forestry, and fisheries</dc:subject>
    <dc:creator rdf:resource="https://orcid.org/0000-0001-8309-6754"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0001-7144-3915"/>
    <dc:creator>Verchot, Louis V., Dutaur, L., Shepherd, Keith D., Albrecht, A., </dc:creator>
    <dc:date>2011-03-01</dc:date>
    <dc:type>journalpaper</dc:type>
    <dct:abstract>Abstract   We studied the biochemical and biophysical processes of carbon sequestration in an intensive agroforestry system on two soils (Feralsol &#8211; Luero; Arenosol &#8211; Teso) in W. Kenya to elucidate the mechanisms associated with long-term carbon storage. Specifically, we looked at a top-down model (macro-aggregates form around organic matter particles and micro-aggregates form within the macro-aggregates) and a bottom-up model (micro-aggregates form independently and are incorporated into macro-aggregates) of soil aggregate formation. Soil samples were collected from experiments on improved tree fallows using different species and two tillage treatments; water-stable aggregates were extracted and sorted into three size classes: macro-aggregates (&gt;&#160;212&#160;&#956;m), meso-aggregates (53&#8211;212&#160;&#956;m) and micro-aggregates (20&#8211;53&#160;&#956;m). Organic matter characterization of each fraction was based on 13C isotope abundance, Fourier transform infrared (FTIR) spectroscopy and the abundance of polysaccharides. Improved fallows increased soil C by 0.28 and 0.26&#160;kg m&#173;2 in the top 20&#160;cm of the soil profile in Luero and Teso, respectively. Tillage altered the distribution of aggregates among size classes. Changes in the &#948;13C signature in each fraction indicated that more of the new carbon was found in the macro-aggregates (35&#8211;70%) and meso-aggregates (18&#8211;49%) in Luero and less (9&#8211;17%) was found in the micro-aggregates. In Teso, about 40&#8211;80% of the new aggregate C was found in the meso-aggregates, 14&#8211;45% was found in the micro-aggregates and only 4&#8211;26% was found in the macro-aggregates. The meso-aggregates and macro-aggregates to a lesser extent, in both sites, were enriched in carboxylic-C and aromatic-C, indicating the importance of OM decomposition and plant-derived C in the stabilization of larger aggregates, supporting the top-down model of aggregate formation. Microbially derived polysaccharides play a leading role in the formation of stable micro-aggregates and carboxylic-C promotes stabilization through surface occlusion. This bottom-up process is essential to promote long-term carbon sequestration in soils. Additionally, the micro-aggregates at both sites were enriched in polysaccharides and had elevated ratios of galactose + mannose:arabinose + xylose than the other aggregate fractions, indicating the importance of microbial processes in the formation of stable micro-aggregates and supporting the bottom-up model.</dct:abstract>
    <dc:title>Organic Matter Stabilization In Soil Aggregates: Understanding The Biogeochemical Mechanisms That Determine The Fate Of Carbon Inputs In Soils</dc:title>
    <dc:identifier>10.1016/j.geoderma.2010.12.017</dc:identifier>
    <dct:references>https://doi.org/10.1016/j.geoderma.2010.12.017</dct:references>
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