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Development of a 3D Graphene Electrode Dielectrophoretic Device
Published on: June 22, 2014
Applicability of Single-Layer Graphene as a Hydrogen-Blocking Interlayer in Low-Temperature PEMFCs
Miriam Komma1,2, Anna T S Freiberg1,2, Dunia Abbas1,2
1Forschungszentrum Jülich GmbH, Helmholtz Institute Erlangen-Nürnberg for Renewable Energy (IEK-11), Cauerstr.1, 91058 Erlangen, Germany.
Single-layer graphene (SLG) effectively blocks hydrogen gas in dry conditions but shows reduced performance in humid proton exchange membrane (PEM) fuel cells. This study compares SLG transfer methods, finding its barrier properties diminish under operating conditions.
Area of Science:
- Materials Science
- Electrochemistry
- Nanotechnology
Background:
- Gas crossover is a critical challenge in proton exchange membrane (PEM) based electrochemical systems.
- Single-layer graphene (SLG) shows promise as a barrier layer for small molecules like hydrogen due to its exceptional properties.
- The practical application of SLG as a gas-blocking interlayer in PEMs requires further investigation.
Purpose of the Study:
- To compare two different methods for transferring SLG onto PEMs.
- To evaluate the effectiveness of SLG as a gas-blocking interlayer in low-temperature PEM fuel cells under various conditions.
- To understand the impact of SLG on membrane performance and water transport.
Main Methods:
- Two SLG transfer techniques onto Nafion XL membranes were employed, creating composite membranes.
- Successful transfer was verified using Raman spectroscopy and ex situ hydrogen permeation tests (dry state).
- Composite membrane performance and hydrogen-blocking ability were assessed in a fuel cell setup under operating conditions (80 °C, humidified gases).
Main Results:
- A 50% reduction in hydrogen permeation was observed in dry conditions after SLG incorporation.
- Fuel cell performance was comparable to reference cells when copper etching residues were avoided.
- Hydrogen crossover reduction decreased to 15-19% under humidified fuel cell operating conditions.
- SLG impaired water transport, potentially affecting membrane water management.
Conclusions:
- SLG can be successfully transferred into PEMs, demonstrating effective hydrogen-blocking in dry states.
- The hydrogen-blocking capability of SLG is significantly reduced under humidified PEM fuel cell operating conditions.
- This reduction is attributed to reversible changes upon humidification and irreversible defects formed during operation.
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