AI summary

65% confidence

Microbial fuel cells (MFCs) can be used for wastewater treatment by converting chemical energy into electricity and reducing metal ions such as Cu2+ and Fe3+.

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What they did

System
MFC

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Abstract

Two options, in regard to applying microbial fuel cells (MFCs) in water treatment, are under discussion, namely the conversion of the chemical energy of organic substrates to electricity, as well as the use their potential to reduce different species, such as the ionic form of copper (Cu2+ converted to metal copper) and iron (Fe3+ converted to Fe2+). The high reduction potential of Cu2+ and Fe3+ makes the processes of electricity production and metal reduction, to be performed simultaneously in MFC, achievable. The electrical yield measurement during the experiments of anodic organic matter degradation by MFC in treating an artificial wastewater with chemical oxygen demand (COD) 0.6 and 1.6 g O2·dm⁻³, as initial COD, are given. It is demonstrated that the higher organic load is associated with better electrical yield. A comparison of MFC and conventional anaerobic digestion performance is discussed, as well. Experimental proofs of copper removal and phosphate mobilization, following the iron reduction of FePO4, are also reported.

Key findings

  • Higher organic load in MFCs is associated with better electrical yield.
  • MFCs can simultaneously produce electricity and reduce metal ions.
  • MFCs can remove copper and mobilize phosphate through iron reduction.

Keywords

Microbial fuel cellChemical oxygen demandWastewaterOrganic matterChemical energyPulp and paper industry

Identifiers

Journal
Processes
Year
2022