4.8 Article

3D Hierarchical Co8FeS8-FeCo2O4/N-CNTs@CF with an Enhanced Microorganisms-Anode Interface for Improving Microbial Fuel Cell Performance

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 31, Pages 35809-35821

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c09622

Keywords

microbial fuel cell; hierarchical nanostructure; carbon nanotube; microorganisms-anode interface; extracellular electron transfer

Funding

  1. Open Project of State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology [HC202141]
  2. National Science Fund for Distinguished Young Scholars [51825202]
  3. National Natural Science Foundation of China [21775032]
  4. Heilongjiang Natural Science Foundation Project [LH2020B007]
  5. Heilongjiang Touyan Innovation Team Program

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This study prepared a hierarchical nanomaterial modified electrode for improving the anode performance of microbial fuel cells (MFCs). The results showed that compared with the conventional electrode, the modified electrode had better wettability, capacitance, diffusion coefficient, and smaller charge transfer resistance. By promoting the enrichment growth of exoelectrogens and effectively driving the extracellular electron transfer process, the electrode enabled MFCs to achieve higher power density and COD removal amount.
Microbial fuel cells (MFCs) are promising ecofriendly techniques for harvesting bioenergy from organic and inorganic matter. Currently, it is challenging to design MFC anodes with favorable microorganism attachment and fast extracellular electron transfer (EET) rate for high MFC performance. Here we prepared N-doped carbon nanotubes (NCNTs) on carbon felt (CF) and used it as a support for growing hierarchical Co8FeS8-FeCo2O4/NCNTs core-shell nanostructures (FeCo/NCNTs@CF). We observed improved wettability, specific areal capacitance, and diffusion coefficient, as well as small charge transfer resistance compared with bare CF. MFCs equipped with FeCo/NCNTs@CF displayed a power density of 3.04 W/m(2) and COD removal amount of 221.0 mg/L/d, about 47.6 and 290.1% improvements compared with that of CF. Biofilm morphology and 16s rRNA gene sequence analysis proved that our anode facilitated the enrichment growth of exoelectrogens. Flavin secretion was also promoted on our hierarchical elelctrode, effectively driving the EET process. This work disclosed that hierarchical nanomaterials modified electrode with tailored physicochemical properties is a promising platform to simultaneously enhance exoelectrogen attachment and EET efficiency for MFCs.

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