4.8 Article

Bifunctional Ag/Fe/N/C Catalysts for Enhancing Oxygen Reduction via Cathodic Biofilm Inhibition in Microbial Fuel Cells

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 8, Issue 11, Pages 6992-7002

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b11561

Keywords

biofouling; microbial fuel cells; nitrogen doping; oxygen reduction reaction; stability

Funding

  1. National Natural Science Foundation of China [21031001, 51578218, 51108162, 20971040, 51210105014, 21001042, 91122018]
  2. Natural Science Foundation of Heilongjiang Province [B201411, QC2015009]
  3. Postdoctoral Science Foundation of Heilongjiang Province [LBH-Q14137]
  4. Cultivation Fund of the Key Scientific and Technical Innovation Project, Ministry of Education of China [708029]
  5. Excellent Young Teachers Fund of Heilongjiang University
  6. Hundred Young Talents in Heilongjiang University

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Limitation of the oxygen reduction reaction (ORR) in single-chamber microbial fuel cells (SC-MFCs) is considered an important hurdle in achieving their practical application. The cathodic catalysts faced with a liquid phase are easily primed with the electrolyte, which provides more surface area for bacterial overgrowth, resulting in the difficulty in transporting protons to active sites. Ag/Fe/N/C composites prepared from Ag and Fe-chelated melamine are used as antibacterial ORR catalysts for SC-MFCs. The structure-activity correlations for Ag/Fe/N/C are investigated by tuning the carbonization temperature (600-900 degrees C) to clarify how the active-constituents of Ag/Fe and N-species influence the antibacterial and ORR activities. A maximum power density of 1791 mW m(-2) is obtained by Ag/Fe/N/C (630 degrees C), which is far higher than that of Pt/C (1192 mW m(-2)), only having a decline of 16.14% after 90 days of running. The Fe-bonded N and the cooperation of pyridine N and pyrrolic N in Ag/Fe/N/C contribute equally to the highly catalytic activity toward ORR The center dot OH or O-2(-) species originating from the catalysis of O-2 can suppress the biofilm growth on Ag/Fe/N/C cathodes. The synergistic effects between the Ag/Fe heterojunction and N-species substantially contribute to the high power output and Coulombic efficiency of Ag/Fe/N/C catalysts. These new antibacterial ORR catalysts show promise for application in MFCs.

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