4.7 Article

Scalable Sacrificial Templating to Increase Porosity and Platinum Utilisation in Graphene-Based Polymer Electrolyte Fuel Cell Electrodes

期刊

NANOMATERIALS
卷 11, 期 10, 页码 -

出版社

MDPI
DOI: 10.3390/nano11102530

关键词

fuel cells; graphene; porosity; electrode structure; spacers

资金

  1. EU Graphene Flagship under the Horizon 2020 Research and Innovation programme [785219-GrapheneCore2, 881603-GrapheneCore3]
  2. ESPRC [EP/S01800X/1, EP/R023581/1, EP/P009050/1, EP/S018204/2]
  3. SCI
  4. Ramsay Memorial Trust
  5. EPSRC [EP/S018204/2, EP/P009050/1, EP/R023581/1] Funding Source: UKRI

向作者/读者索取更多资源

The study introduces a simple, scalable, and non-destructive method to significantly improve the pore structure and platinum utilization of graphene-based membrane electrode assemblies, by hindering restacking and increasing porosity through the use of urea additive.
Polymer electrolyte fuel cells hold great promise for a range of applications but require advances in durability for widespread commercial uptake. Corrosion of the carbon support is one of the main degradation pathways; hence, corrosion-resilient graphene has been widely suggested as an alternative to traditional carbon black. However, the performance of bulk graphene-based electrodes is typically lower than that of commercial carbon black due to their stacking effects. This article reports a simple, scalable and non-destructive method through which the pore structure and platinum utilisation of graphene-based membrane electrode assemblies can be significantly improved. Urea is incorporated into the catalyst ink before deposition, and is then simply removed from the catalyst layer after spraying by submerging the electrode in water. This additive hinders graphene restacking and increases porosity, resulting in a significant increase in Pt utilisation and current density. This technique does not require harsh template etching and it represents a pathway to significantly improve graphene-based electrodes by introducing hierarchical porosity using scalable liquid processes.

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