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Biofuels technology: A look forward

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Listed:
  • William Stafford
  • Adrian Lotter
  • Alan Brent
  • Graham von Maltitz

Abstract

This paper assesses biofuels technology readiness and provides foresight to biofuels development in Southern Africa. Efficient conversion pathways, coupled with biomass from waste or high-yielding energy crops, reduces both the costs of biofuels production and the environmental impacts. Currently, most biofuels are more expensive than petroleum fuels and market uptake will be influenced by mandates and subsidies. Advanced biofuels promise greater efficiencies and carbon emission reductions at reduced cost, but will require further R&D to reach commercialization.

Suggested Citation

  • William Stafford & Adrian Lotter & Alan Brent & Graham von Maltitz, 2017. "Biofuels technology: A look forward," WIDER Working Paper Series wp-2017-87, World Institute for Development Economic Research (UNU-WIDER).
  • Handle: RePEc:unu:wpaper:wp-2017-87
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    File URL: https://www.wider.unu.edu/sites/default/files/wp2017-87.pdf
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    References listed on IDEAS

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    1. Hermann, Weston A., 2006. "Quantifying global exergy resources," Energy, Elsevier, vol. 31(12), pages 1685-1702.
    2. Malça, João & Freire, Fausto, 2006. "Renewability and life-cycle energy efficiency of bioethanol and bio-ethyl tertiary butyl ether (bioETBE): Assessing the implications of allocation," Energy, Elsevier, vol. 31(15), pages 3362-3380.
    3. Perlack, R.D. & Turhollow, A.F., 2003. "Feedstock cost analysis of corn stover residues for further processing," Energy, Elsevier, vol. 28(14), pages 1395-1403.
    4. Itf, 2008. "Biofuels: Linking Support to Performance," OECD/ITF Joint Transport Research Centre Discussion Papers 2008/7, OECD Publishing.
    5. Gerbens-Leenes, P.W. & Hoekstra, A.Y. & van der Meer, Th., 2009. "The water footprint of energy from biomass: A quantitative assessment and consequences of an increasing share of bio-energy in energy supply," Ecological Economics, Elsevier, vol. 68(4), pages 1052-1060, February.
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    Cited by:

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