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Low pH, high salinity: Too much for microbial fuel cells?

handle: 11386/4769800 , 2108/206312 , 11367/56331
Low pH, high salinity: Too much for microbial fuel cells?
Twelve single chambered, air-cathode Tubular Microbial Fuel Cells (TMFCs) have been filled up with fruit and vegetable residues. The anodes were realized by means of a carbon fiber brush, while the cathodes were realized through a graphite-based porous ceramic disk with Nafion membranes (117 Dupont). The performances in terms of polarization curves and power production were assessed according to different operating conditions: percentage of solid substrate water dilution, adoption of freshwater and a 35mg/L NaCl water solution and, finally, the effect of an initial potentiostatic growth. All TMFCs operated at low pH (pH$=3.0 \pm 0.5$), as no pH amendment was carried out. Despite the harsh environmental conditions, our TMFCs showed a Power Density (PD) ranging from 20 to 55~mW/m$^2 \cdot$kg$_{\text{waste}}$ and a maximum CD of 20~mA/m$^2 \cdot$kg$_{\text{waste}}$, referred to the cathodic surface. COD removal after a $28-$day period was about $45 \%$. The remarkably low pH values as well as the fouling of Nafion membrane very likely limited TMFC performances. However, a scale-up estimation of our reactors provides interesting values in terms of power production, compared to actual anaerobic digestion plants. These results encourage further studies to characterize the graphite-based porous ceramic cathodes and to optimize the global TMFC performances, as they may provide a valid and sustainable alternative to anaerobic digestion technologies.
13 pages, 10 Figures
Chemical Physics (physics.chem-ph), Settore ING-IND/08 - MACCHINE A FLUIDO, FOS: Physical sciences, Other Quantitative Biology (q-bio.OT), Quantitative Biology - Other Quantitative Biology, Microbial fuel cell; Waste to energy; Power generation; Direct conversion of solid organic waste, Biological Physics (physics.bio-ph), Physics - Chemical Physics, FOS: Biological sciences, Physics - Biological Physics, Microbial fuel cell, Waste to energy, Power generation, Direct conversion of solid organic waste
Chemical Physics (physics.chem-ph), Settore ING-IND/08 - MACCHINE A FLUIDO, FOS: Physical sciences, Other Quantitative Biology (q-bio.OT), Quantitative Biology - Other Quantitative Biology, Microbial fuel cell; Waste to energy; Power generation; Direct conversion of solid organic waste, Biological Physics (physics.bio-ph), Physics - Chemical Physics, FOS: Biological sciences, Physics - Biological Physics, Microbial fuel cell, Waste to energy, Power generation, Direct conversion of solid organic waste
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