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- W3217361555 endingPage "102459" @default.
- W3217361555 startingPage "102459" @default.
- W3217361555 abstract "Biofilms of exoelectrogens are known to oxidize organic matter in wastewater. The present study highlights the electrochemical polymerization of polyaniline (PANI) on gold (Au) sputtered cellulosic and nylon papers to develop exoelectrogenic biofilm to be used in a microbial fuel cell (MFC). Polymerization of PANI on Au sputtered papers was performed using direct current (DC) and alternating current (AC) based electrochemical polymerization techniques (viz. cyclic voltammetry (CV), chrono-amperometry (CA), chrono-potentiometry (CP) and electrochemical impedance spectroscopy (EIS)). Among various DC and AC electrochemical routes, the AC route was found to be a better alternative for the electrochemical polymerization of PANI fibres. The outcomes of analytical techniques established the uniform deposition of PANI fibres of 1.12 μm diameter on the Au-supported conducting paper by utilizing the AC electrochemical route. In comparison to PANIEIS/Au/Nylon paper and PANIEIS/Au/Cellulosic paper-based flexible electrodes, the least charge transfer resistance (6.96 Ω) was achieved by conducting paper. The developed conducting paper was incorporated in an MFC to develop exoelectrogenic biofilm. Interactions between the exoelectrogenic biofilm and the conducting paper were confirmed by using Raman spectroscopy. Biofilm grown on PANIEIS/Au/Nylon paper showed better performance than the previously developed PANIEIS/Au/Cellulosic paper. Based on maximum current output the fabricated conducting paper have the potential to be employed in an MFC for the measurement of water quality/toxicity/BOD over a prolonged time without any leaching and fouling." @default.
- W3217361555 created "2021-12-06" @default.
- W3217361555 creator A5023537295 @default.
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- W3217361555 date "2022-04-01" @default.
- W3217361555 modified "2023-09-28" @default.
- W3217361555 title "Alternating current based electrochemically polymerized polyaniline modified flexible conducting paper as an exoelectrogenic biofilm platform for a microbial fuel cell" @default.
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- W3217361555 doi "https://doi.org/10.1016/j.jwpe.2021.102459" @default.
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