Core-shell structured multiwall carbon nanotube-graphene oxide nanoribbon and its N-doped variant as anodes for high-power microbial fuel cells

Yu Chen Liu, Yu Hsuan Hung, Shih Fu Liu, Chun Han Guo, Tzu Yin Liu*, Chia Liang Sun, Han Yi Chen

*Corresponding author for this work

Research output: Contribution to journalJournal Article peer-review

27 Scopus citations

Abstract

A novel core-shell structured multiwall carbon nanotube-graphene oxide nanoribbon (MWCNT@GONR) and a nitrogen-doped MWCNT@GONR (N-MWCNT@GONR) were synthesized through a microwave energy-assisted unzipping process and utilized as anodes forEscherichia coli-based microbial fuel cells (MFCs) for the first time. To evaluate the electrochemical performance of the MFCs, we measured the electrochemical activity and charge transfer in MFCs with MWCNT, N-MWCNT@GONR, and MWCNT@GONR anodes. Compared to the MFC with the MWCNT anode (970 mW m−2), the MFCs with the N-MWCNT@GONR and MWCNT@GONR anodes exhibit higher power densities of up to 3444 and 3291 mW m−2, respectively. Both the oxygen and nitrogen functional groups on the MWCNT@GONR and N-MWCNT@GONR contribute to good biocompatibility, which greatly enhances the charge transfer efficiency and biofilm formation on the anode surface. Our results suggest that MWCNT@GONR and N-MWCNT@GONR are outstanding and promising anode materials for MFCs.

Original languageEnglish
Pages (from-to)5339-5351
Number of pages13
JournalSustainable Energy and Fuels
Volume4
Issue number10
DOIs
StatePublished - 10 2020

Bibliographical note

Publisher Copyright:
© The Royal Society of Chemistry 2020.

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