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Development of biofuel cells based on gold nanoparticle decorated multi-walled carbon nanotubes. | LitMetric

Development of biofuel cells based on gold nanoparticle decorated multi-walled carbon nanotubes.

Biosens Bioelectron

Department of Applied Physics, Graduate School of Engineering, Osaka University, Suita, Osaka 565-0871, Japan.

Published: December 2011

AI Article Synopsis

  • This study developed a method for creating Au nanoparticle-decorated functionalized multi-walled carbon nanotubes (Au-NPs/f-MWCNTs) to improve oxidation reactions of monosaccharides for use in air-biofuel cells.
  • The synthesized Au-NPs/f-MWCNTs showed enhanced catalytic activity and stability, increasing the power density of air-glucose fuel cells by three times, and achieving an impressive open circuit voltage of about 1.3 V.
  • The research revealed that the structure of -OH groups on monosaccharides significantly impacts their oxidation efficiency, affecting power output in fuel cells, which can potentially be applied to other monosaccharides for energy generation.

Article Abstract

This study focused on developing the synthesis of Au nanoparticle-decorated functionalized multi-walled carbon nanotubes (Au-NPs/f-MWCNTs) for monosaccharide (bio-fuel) oxidation reactions and practical application in air-biofuel cells. We developed a scalable and straightforward method to synthesize Au-NPs/f-MWCNTs which allow us to control the loading and size of the Au-NPs. The Au-NPs/f-MWCNTs exhibited better catalytic activities and stability than the Au sheet and subsequently resulted in a threefold increase in the power density of the air-glucose fuel cell with an exceptionally high open circuit voltage (~1.3 V). The catalytic efficiency was confirmed by high performance liquid chromatography with the superior of the Au-NPs/f-MWCNTs over a bare gold electrode. In addition, the application of this advanced catalyst to other monosaccharide oxidation reactions figured out that the configuration of -OH groups at C(2) and C(3) of the reactants plays an important role in the initial adsorption process, and thus, affects the required activation energy for further oxidation. The different monosaccharides lead to significantly different fuel cell performances in terms of power density, which coherently corresponds to the difference in the configuration of C(2) and C(3). Because two small air-glucose fuel cells using Au-NPs/f-MWCNTs can run a LED lamp, further applications of other monosaccharides as fuel in biofuel cells for equivalent required power devices may be possible.

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Source
http://dx.doi.org/10.1016/j.bios.2011.09.012DOI Listing

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