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Time-course correlation of biofilm properties and electrochemical performance in single-chamber microbial fuel cells

The relationship between anode microbial characteristics and electrochemical parameters in microbial fuel cells (MFCs) was analyzed by time-course sampling of parallel single-bottle MFCs operated under identical conditions. While voltage stabilized within 4days, anode biofilms continued growing during the six-week operation. Viable cell density increased asymptotically, but membrane-compromised cells accumulated steadily from only 9% of total cells on day 3 to 52% at 6weeks. Electrochemical performance followed the viable cell trend, with a positive correlation for power density and an inverse correlation for anode charge transfer resistance. The biofilm architecture shifted from rod-shaped, dispersed cells to more filamentous structures, with the continuous detection of Geobacter sulfurreducens-like 16S rRNA fragments throughout operation and the emergence of a community member related to a known phenazine-producing Pseudomonas species. A drop in cathode open circuit potential between weeks two and three suggested that uncontrolled biofilm growth on the cathode deleteriously affects system performance.
- Pennsylvania State University United States
- King Abdullah University of Science and Technology Saudi Arabia
- University of Colorado Denver United States
- King Abdullah University of Science and Technology Saudi Arabia
Microbial fuel cell, Time Factors, Bioelectric Energy Sources, Cell Survival, Biofilm, Equipment Design, Kinetics, Electricity, Biofilms, Pseudomonas, RNA, Ribosomal, 16S, Electrochemistry, Geobacter, Electrochemical impedance spectroscopy, Electrodes
Microbial fuel cell, Time Factors, Bioelectric Energy Sources, Cell Survival, Biofilm, Equipment Design, Kinetics, Electricity, Biofilms, Pseudomonas, RNA, Ribosomal, 16S, Electrochemistry, Geobacter, Electrochemical impedance spectroscopy, Electrodes
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