JOURNAL ARTICLE

Three-Dimensional Carbon Nanotube−Textile Anode for High-Performance Microbial Fuel Cells

Abstract

Microbial fuel cells (MFCs) harness the metabolism of microorganisms, converting chemical energy into electrical energy. Anode performance is an important factor limiting the power density of MFCs for practical application. Improving the anode design is thus important for enhancing the MFC performance, but only a little development has been reported. Here, we describe a biocompatible, highly conductive, two-scale porous anode fabricated from a carbon nanotube−textile (CNT−textile) composite for high-performance MFCs. The macroscale porous structure of the intertwined CNT−textile fibers creates an open 3D space for efficient substrate transport and internal colonization by a diverse microflora, resulting in a 10-fold-larger anolyte−biofilm−anode interfacial area than the projective surface area of the CNT−textile. The conformally coated microscale porous CNT layer displays strong interaction with the microbial biofilm, facilitating electron transfer from exoelectrogens to the CNT−textile anode. An MFC equipped with a CNT−textile anode has a 10-fold-lower charge-transfer resistance and achieves considerably better performance than one equipped with a traditional carbon cloth anode: the maximum current density is 157% higher, the maximum power density is 68% higher, and the energy recovery is 141% greater.

Keywords:
Microbial fuel cell Anode Power density Porosity Carbon fibers Microscale chemistry Current density Internal resistance Composite number

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Topics

Microbial Fuel Cells and Bioremediation
Physical Sciences →  Environmental Science →  Environmental Engineering
Plant and Biological Electrophysiology Studies
Life Sciences →  Agricultural and Biological Sciences →  Plant Science
CO2 Reduction Techniques and Catalysts
Physical Sciences →  Energy →  Renewable Energy, Sustainability and the Environment
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