Composite Membranes for High Temperature PEM Fuel Cells and Electrolysers: A Critical Review

Композитные мембраны для высокотемпературных топливных элементов с протонообменной мембраной и электролизёров: критический обзор
Xinwei Sun, Stian Christopher Simonsen, Truls Norby, Athanasios Chatzitakis
2019-07-11

PEM electrolyserscomposite proton exchange membraneshigh-temperature PEM fuel cellspolybenzimidazolesulfonated polyetheretherketone
Polymer electrolyte membrane (PEM) fuel cells and electrolysers offer efficient use and production of hydrogen for emission-free transport and sustainable energy systems. Perfluorosulfonic acid (PFSA) membranes like Nafion® and Aquivion® are the state-of-the-art PEMs, but there is a need to increase the operating temperature to improve mass transport, avoid catalyst poisoning and electrode flooding, increase efficiency, and reduce the cost and complexity of the system. However, PSFAs-based membranes exhibit lower mechanical and chemical stability, as well as proton conductivity at lower relative humidities and temperatures above 80 °C. One approach to sustain performance is to introduce inorganic fillers and improve water retention due to their hydrophilicity. Alternatively, polymers where protons are not conducted as hydrated H3O+ ions through liquid-like water channels as in the PSFAs, but as free protons (H+) via Brønsted acid sites on the polymer backbone, can be developed. Polybenzimidazole (PBI) and sulfonated polyetheretherketone (SPEEK) are such materials, but need considerable acid doping. Different composites are being investigated to solve some of the accompanying problems and reach sufficient conductivities. Herein, we critically discuss a few representative investigations of composite PEMs and evaluate their significance. Moreover, we present advances in introducing electronic conductivity in the polymer binder in the catalyst layers.
1
Composite PEM research aims to address the limitations of high-temperature materials, while electronic conductivity in catalyst-layer polymer binders represents an additional emerging advance.
2
Higher-temperature PEM operation could improve mass transport, mitigate catalyst poisoning and electrode flooding, increase efficiency, and reduce system cost and complexity.
3
Inorganic fillers are investigated to enhance water retention through hydrophilicity and thereby sustain composite membrane performance at elevated temperatures.
4
PBI and SPEEK conduct protons through Brønsted acid sites rather than hydrated water channels, but require substantial acid doping to achieve adequate conductivity.
5
PFSA membranes are state-of-the-art but suffer reduced mechanical and chemical stability and poor proton conductivity at low humidity and temperatures above 80 °C.

Composite polymer electrolyte membranes and polymer binders for high-temperature PEM fuel cells and electrolysers

Their proton conductivity, water retention, mechanical and chemical stability, performance, and incorporation of electronic conductivity under elevated-temperature and low-humidity conditions

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2019-07-11
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Xinwei Sun
Stian Christopher Simonsen
Truls Norby
Athanasios Chatzitakis
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