Highly durable anodes of microbial fuel cells using a reduced graphene oxide/carbon nanotube-coated scaffold

Hung Tao Chou, Hui Ju Lee, Chi Young Lee, Nyan Hwa Tai*, Hwan You Chang

*Corresponding author for this work

Research output: Contribution to journalJournal Article peer-review

66 Scopus citations

Abstract

Melamine sponges coated with reduced graphene oxide/carbon nanotube (rGO-CNT sponges) through a dip-coating method were fabricated that provide a large electrical conductive surface for Escherichia coli growth and electron transfer in microbial fuel cell. Four rGO-CNT sponges with different thicknesses and arrangements were tested as an anode in this study. The thinnest one (with a thickness of 1.5mm) exhibited the best performance, providing a maximum current density of 335A m-3 and a remarkably durable life time of 20days at 37°C. Analyses of bacterial colonisation on the rGO-CNT sponges using FE-SEM and the bacterial metabolic activity using the β-galactosidase assay indicates that the rGO-CNT sponges provide excellent biocompatibility for E. coli proliferation and could help to maintain high bacterial metabolic activity, presumably due to the high mass transfer rate of the porous scaffold. In this regard, the rGO-CNT sponges showed higher durability and performed better electrochemical properties than traditional carbon-based and metal-based anodes.

Original languageEnglish
Pages (from-to)532-536
Number of pages5
JournalBioresource Technology
Volume169
DOIs
StatePublished - 10 2014
Externally publishedYes

Keywords

  • Biocatalyst
  • Bioenergy
  • Graphene
  • Macroporous anodes
  • Microbial fuel cell

Fingerprint

Dive into the research topics of 'Highly durable anodes of microbial fuel cells using a reduced graphene oxide/carbon nanotube-coated scaffold'. Together they form a unique fingerprint.

Cite this