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Opportunities for renewable bioenergy using microorganisms

Biotechnology and Bioengineering · 2008 · Vol. 100(2) · pp. 203–212
Bruce E. Rittmann

Abstract

Global warming can be slowed, and perhaps reversed, only when society replaces fossil fuels with renewable, carbon-neutral alternatives. The best option is bioenergy: the sun's energy is captured in biomass and converted to energy forms useful to modern society. To make a dent in global warming, bioenergy must be generated at a very high rate, since the world today uses approximately 10 TW of fossil-fuel energy. And, it must do so without inflicting serious damage on the environment or disrupting our food supply. While most bioenergy options fail on both counts, several microorganism-based options have the potential to produce large amounts of renewable energy without disruptions. In one approach, microbial communities convert the energy value of various biomass residuals to socially useful energy. Biomass residuals come from agricultural, animal, and a variety of industrial operations, as well as from human wastes. Microorganisms can convert almost all of the energy in these wastes to methane, hydrogen, and electricity. In a second approach, photosynthetic microorganisms convert sunlight into biodiesel. Certain algae (eukaryotes) or cyanobacteria (prokaryotes) have high lipid contents. Under proper conditions, these photosynthetic microorganisms can produce lipids for biodiesel with yields per unit area 100 times or more than possible with any plant system. In addition, the non-lipid biomass can be converted to methane, hydrogen, or electricity. Photosynthetic microorganisms do not require arable land, an advantage because our arable land must be used to produce food. Algae or cyanobacteria may be the best option to produce bioenergy at rates high enough to replace a substantial fraction of our society's use of fossil fuels.

Algal biology and biofuel productionMicrobial Metabolic Engineering and BioproductionMicrobial Fuel Cells and BioremediationBioenergyArable landRenewable energyFossil fuelBiomass (ecology)Environmental scienceEnergy sourceBiofuelPhotosynthesisGreenhouse gas

MeSH terms

Bioelectric Energy SourcesConservation of Energy ResourcesElectricityElectric Power SuppliesBacterial Physiological Phenomena

Funding

  • National Aeronautics and Space Administration
  • Science Foundation Arizona
  • Arizona State University
Citations
640
FWCI
26.19
field-weighted impact
References
43
Percentile
100%
vs. same field & year
Citations per year
References
Microbial Fuel Cells:  Methodology and Technology
Environmental Science & Technology · 2006 · 5,920 citations
Photobioreactors: production systems for phototrophic microorganisms
Applied Microbiology and Biotechnology · 2001 · 972 citations
Renewable methane from anaerobic digestion of biomass
Renewable Energy · 2001 · 586 citations
Conduction-based modeling of the biofilm anode of a microbial fuel cell
Biotechnology and Bioengineering · 2007 · 487 citations
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