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        <dc:title>Surface organic carbon enrichment to explain greater CO2 emissions from short-term no-tilled soils</dc:title>
        <dc:creator>Chaplot, V</dc:creator>
        <dc:creator>Abdalla, K</dc:creator>
        <dc:creator>Alexis, M</dc:creator>
        <dc:creator>Bourennane, H</dc:creator>
        <dc:creator>Darboux, F</dc:creator>
        <dc:creator>Dlamini, P</dc:creator>
        <dc:creator>Everson, C</dc:creator>
        <dc:creator>Mchunu, C</dc:creator>
        <dc:creator>Muller-Nedebock, D</dc:creator>
        <dc:creator>Mutema, M</dc:creator>
        <dc:creator>Quenea, K</dc:creator>
        <dc:creator>Thenga, H</dc:creator>
        <dc:creator>Chivenge, P</dc:creator>
        <dc:subject>Soil Science</dc:subject>
        <dc:description>The impact of agricultural practices on CO2 emissions from soils needs to be understood and quantified to&#13;
enhance ecosystem functions, especially the ability of soils to sequester atmospheric carbon (C), while&#13;
enhancing food and biomass production. The objective of this study was to assess CO2 emissions in the&#13;
soil surface following tillage abandonment and to investigate some of the underlying soil physical,&#13;
chemical and biological controls. Maize (Zea mays) was planted under conventional tillage (T) and&#13;
no-tillage (NT), both without crop residues under smallholder farming conditions in Potshini, South&#13;
Africa. Intact top-soil (0–0.05 m) core samples (N = 54) from three 515m2 plots per treatment were&#13;
collected two years after conversion of T to NT to evaluate the short-term CO2 emissions. Depending on&#13;
the treatment, cores were left intact, compacted by 5 and 10%, or had surface crusts removed. They were&#13;
incubated for 20 days with measurements of CO2 fluxes twice a day during the first three days and once a&#13;
day thereafter. Soil organic C (SOC) content, soil bulk density (rb), aggregate stability, soil organic matter&#13;
quality, and microbial biomass and its activity were evaluated at the onset of the incubation. CO2&#13;
emissions were 22% lower under NT compared with T with CO2 emissions of 0.90.10 vs 1.10.10mg&#13;
C–CO2 gC1 day1 under NT and T, respectively, suggesting greater SOC protection under NT. However,&#13;
there were greater total CO2 emissions per unit of surface by 9% under NT compared to T (1.150.03 vs&#13;
1.050.04 g C–CO2m2 day1). SOC protection significantly increased with the increase in soil bulk&#13;
density (r = 0.89) and aggregate stability (from 1.70.25mmto 2.30.31, r = 0.50), and to the decrease in&#13;
microbial biomass and its activity (r =0.59 and 0.57, respectively). In contrast, the greater NT CO2&#13;
emissions per m2 were explained by top-soil enrichment in SOC by 48% (from 12.40.2 to&#13;
19.10.4 g kg1, r = 0.59). These results on the soil controls of tillage impact on CO2 emissions are&#13;
expected to inform on the required shifts in agricultural practices for enhancing C sequestration in soils.&#13;
In the context of the study, any mechanism favoring aggregate stability and promoting SOC allocation&#13;
deep in the soil profile rather than in the top-soil would greatly diminish soil CO2 outputs and thus&#13;
stimulate C sequestration.</dc:description>
        <dc:publisher>Elsevier</dc:publisher>
        <dc:date>2015</dc:date>
        <dc:type>Article</dc:type>
        <dc:type>PeerReviewed</dc:type>
        <dc:format>application/pdf</dc:format>
        <dc:language>en</dc:language>
        <dc:identifier>http://oar.icrisat.org/8673/1/Agriculture%2CEcosystems%20and%20Environment_203_110%E2%80%93118_2015.pdf</dc:identifier>
        <dc:identifier>  Chaplot, V and Abdalla, K and Alexis, M and Bourennane, H and Darboux, F and Dlamini, P and Everson, C and Mchunu, C and Muller-Nedebock, D and Mutema, M and Quenea, K and Thenga, H and Chivenge, P  (2015) Surface organic carbon enrichment to explain greater CO2 emissions from short-term no-tilled soils.  Agriculture, Ecosystems &amp; Environment, 203.  pp. 110-118.  ISSN 0167-8809     </dc:identifier>
        <dc:relation>http://dx.doi.org/10.1016/j.agee.2015.02.001</dc:relation></oai_dc:dc>
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