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Soil carbon sequestration and biochar as negative emission technologies

Global Change Biology · 2016 · Vol. 22(3) · pp. 1315–1324
Pete Smith

Abstract

Despite 20 years of effort to curb emissions, greenhouse gas (GHG) emissions grew faster during the 2000s than in the 1990s, which presents a major challenge for meeting the international goal of limiting warming to <2 °C relative to the preindustrial era. Most recent scenarios from integrated assessment models require large-scale deployment of negative emissions technologies (NETs) to reach the 2 °C target. A recent analysis of NETs, including direct air capture, enhanced weathering, bioenergy with carbon capture and storage and afforestation/deforestation, showed that all NETs have significant limits to implementation, including economic cost, energy requirements, land use, and water use. In this paper, I assess the potential for negative emissions from soil carbon sequestration and biochar addition to land, and also the potential global impacts on land use, water, nutrients, albedo, energy and cost. Results indicate that soil carbon sequestration and biochar have useful negative emission potential (each 0.7 GtCeq. yr(-1) ) and that they potentially have lower impact on land, water use, nutrients, albedo, energy requirement and cost, so have fewer disadvantages than many NETs. Limitations of soil carbon sequestration as a NET centre around issues of sink saturation and reversibility. Biochar could be implemented in combination with bioenergy with carbon capture and storage. Current integrated assessment models do not represent soil carbon sequestration or biochar. Given the negative emission potential of SCS and biochar and their potential advantages compared to other NETs, efforts should be made to include these options within IAMs, so that their potential can be explored further in comparison with other NETs for climate stabilization.

Carbon Dioxide Capture TechnologiesPer- and polyfluoroalkyl substances researchAtmospheric and Environmental Gas DynamicsBiocharCarbon sequestrationEnvironmental scienceGreenhouse gasSlash-and-charCarbon sinkBio-energy with carbon capture and storageSoil carbonClimate change mitigationSoil organic matter

MeSH terms

Air PollutantsCharcoalClimateEnvironmental MonitoringSoilGreenhouse EffectClimate ChangeCarbon Sequestration

Funding

  • Belmont Forum
  • Sight Research UK
  • Natural Environment Research Council
  • Seventh Framework Programme
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References
Betting on negative emissions
Nature Climate Change · 2014 · 1,110 citations
Sustainable biochar to mitigate global climate change
Nature Communications · 2010 · 2,531 citations
The challenge to keep global warming below 2 °C
Nature Climate Change · 2012 · 978 citations
Greenhouse gas mitigation in agriculture
Philosophical Transactions of the Royal Society B Biological Sciences · 2007 · 2,490 citations
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