Boosting Power Density of Microbial Fuel Cells with 3D Nitrogen‐Doped Graphene Aerogel Electrode
Yang Yang, Tianyu Liu, Xun Zhu, Feng Zhang +3
AI summary
60% confidenceA 3D nitrogen-doped graphene aerogel (N-GA) anode material is developed for microbial fuel cells (MFCs), achieving high power density due to its hierarchical porous structure and reduced charge transfer resistance.
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Abstract
A 3D nitrogen‐doped graphene aerogel (N‐GA) as an anode material for microbial fuel cells (MFCs) is reported. Electron microscopy images reveal that the N‐GA possesses hierarchical porous structure that allows efficient diffusion of both bacterial cells and electron mediators in the interior space of 3D electrode, and thus, the colonization of bacterial communities. Electrochemical impedance spectroscopic measurements further show that nitrogen doping considerably reduces the charge transfer resistance and internal resistance of GA, which helps to enhance the MFC power density. Importantly, the dual‐chamber milliliter‐scale MFC with N‐GA anode yields an outstanding volumetric power density of 225 ± 12 W m −3 normalized to the total volume of the anodic chamber (750 ± 40 W m −3 normalized to the volume of the anode). These power densities are the highest values report for milliliter‐scale MFCs with similar chamber size (25 mL) under the similar measurement conditions. The 3D N‐GA electrode shows great promise for improving the power generation of MFC devices.
Key findings
- The N-GA anode yields an outstanding volumetric power density of 225 ± 12 W m⁻³.
- The power density is the highest value reported for milliliter-scale MFCs with similar chamber size (25 mL) under similar measurement conditions.
- The 3D N-GA electrode shows great promise for improving the power generation of MFC devices.
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Identifiers
- Journal
- Advanced Science
- Year
- 2016