Framework of Cytochrome/Vitamin B 2 Linker/Graphene for Robust Microbial Electricity Generation

A bioelectrochemical system (BES) allows direct electricity production from wastes, but its low-power density, which is mainly associated with its poor anodic performance, limits its practical applications. Here, the anodic performance of a BES can be significantly improved by electrodepositing vita...

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Veröffentlicht in:ACS applied materials & interfaces 2018-10, Vol.10 (41), p.35090-35098
Hauptverfasser: Yu, Sheng-Song, Cheng, Lei, Chen, Jie-Jie, Li, Wen-Wei, Zhao, Feng, Wang, Wen-Lan, Li, Dao-Bo, Zhang, Feng, Yu, Han-Qing
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Sprache:eng
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Zusammenfassung:A bioelectrochemical system (BES) allows direct electricity production from wastes, but its low-power density, which is mainly associated with its poor anodic performance, limits its practical applications. Here, the anodic performance of a BES can be significantly improved by electrodepositing vitamin B (VB ) onto a graphene [reduced graphene oxide (rGO)]-modified glassy carbon electrode (VB /rGO/GC) with Geobacter sulfurreducens as the model microorganisms. The VB /rGO/GC electrode results in 200% higher electrochemical activity than a bare GC anode. Additionally, in microbial electrolysis cells, the current density of this composite electrode peaks at ∼210 μA cm after 118 h and is maintained for 113 h. An electrochemical analysis coupled with molecular simulations reveals that using VB as a linker between the electrochemically active protein of this model strain and the rGO surface accelerates the electron transfer, which further improves the bioelectricity generation and favors the long-term stability of the BES. The VB bound with a flexible ribityl group as the organic molecular bridge efficiently mediates energy conversion in microbial metabolism and artificial electronics. This work provides a straightforward and effective route to significantly enhance the bioenergy generation in a BES.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.8b10877