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Volume 40 Issue 3
Mar.  2022
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Article Contents
GUO Yankai, GUO Jinyan, ZHAO Juan, MA Zhiyuan, NIU Yanyan, YANG Jiaqi, LIAN Jing. PREPARATION OF PMo12/rGO/PPy ANODE BY ELECTRODEPOSITION FOR MICROBIAL FUEL CELLS[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(3): 147-153. doi: 10.13205/j.hjgc.202203022
Citation: GUO Yankai, GUO Jinyan, ZHAO Juan, MA Zhiyuan, NIU Yanyan, YANG Jiaqi, LIAN Jing. PREPARATION OF PMo12/rGO/PPy ANODE BY ELECTRODEPOSITION FOR MICROBIAL FUEL CELLS[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(3): 147-153. doi: 10.13205/j.hjgc.202203022

PREPARATION OF PMo12/rGO/PPy ANODE BY ELECTRODEPOSITION FOR MICROBIAL FUEL CELLS

doi: 10.13205/j.hjgc.202203022
  • Received Date: 2021-07-16
    Available Online: 2022-07-07
  • The electrochemical characteristics of anode materials for microbial fuel cells (MFC) affect their electrical performance and pollutant reduction capacity. In this experiment, the phosphomolybdic acid/reduced graphene oxide/polypyrrole (PMo12/rGO/PPy) anode was obtained by electrochemical deposition method. Then the morphology and electrochemical characteristics of PMo12/rGO/PPy anode were analyzed. Finally, the electricity generation and reduction performance of PMo12/rGO/PPy anode MFC at different concentrations of perchlorate (ClO4-) were investigated. The results showed that the PMo12/rGO/PPy anode provided a larger specific surface area than the control for the attachment of microorganisms, thus providing more active sites for electron transport. The use of PMo12/rGO/PPy anode resulted in an increase of charge transfer amount by 493%, a decrease of charge transfer impedance by 83.3%, and an increase of exchange current density by 53.4%. At the same time, when the concentration of ClO4- was 420 mg/L, PMo12/rGO/PPy anode MFC had the best power generation performance, and the maximum output voltage reached 148.47 mV.
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