Rational Heterogeneity of Membrane Electrode Assemblies for Next-Generation Polymer Electrolyte Fuel Cells (HETEROMEA)

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Title
Rational Heterogeneity of Membrane Electrode Assemblies for Next-Generation Polymer Electrolyte Fuel Cells (HETEROMEA)

CoPED ID
2dde5173-e9d0-4c9b-b269-9a28fa57db56

Status
Active


Value
£3,259,470

Start Date
Aug. 31, 2023

End Date
Aug. 31, 2026

Description

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Fuel cell technologies suffer from key cost, efficiency and degradation issues that must be resolved before they can reach their full commercial potential. Unfortunately many of the limitations of current polymer electrolyte membrane fuel cell (PEMFC) technologies are introduced, or exacerbated, by the current design of their membrane electrode assemblies (MEAs). Homogeneously constructed MEAs (i.e. the industrially standard) suffer from heterogeneity in the distribution of current, pressure, reactant concentration, water distribution and temperature, leading to numerous unintended gradients across the fuel cell which act to heterogeneously utilise, and therefore degrade, catalysts, their supports and ion conducting membranes.

In HETEROMEA, we will characterise and understand the impact of intrinsic heterogeneity on MEA performance and durability. This understanding will be used to inform the design and implementation of material heterogeneously within next-generation MEAs, to 'smooth out' inefficient gradients and produce a homogeneous distribution of current, water, reactant partial pressure in operational PEMFCs; i.e. we will produce MEAs where the constituents (including e.g. Pt, ionomer, porosity, membrane) are intelligently distributed inhomogeneously, mitigating performance and durability losses. This will be enabled via the utilisation of robotic ultrasonic spray printing, a tool that allows flexible but precise control over material loading and distribution. HETEROMEA will therefore deliver a significant improvement in catalyst utilisation, mass transport resistance, charge transfer resistance and flooding, while using a standard range of industry-relevant fuel cell materials (e.g. commercial catalysts).

Thomas Miller PI_PER
Daniel Brett COI_PER
Theo Suter RESEARCH_COI_PER

Subjects by relevance
  1. Fuel cells
  2. Materials (matter)
  3. Electrolytes

Extracted key phrases
  1. Generation Polymer Electrolyte Fuel Cells
  2. Current polymer electrolyte membrane fuel cell
  3. Rational heterogeneity
  4. Membrane Electrode Assemblies
  5. Relevant fuel cell material
  6. Fuel cell technology
  7. Generation MEAs
  8. Intrinsic heterogeneity
  9. Current design
  10. Ion conducting membrane
  11. Water distribution
  12. Homogeneous distribution
  13. Reactant partial pressure
  14. HETEROMEA
  15. Commercial catalyst

Related Pages

UKRI project entry

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