Overview: State-of-the Art Commercial Membranes for Anion Exchange Membrane Water Electrolysis

Author:

Henkensmeier Dirk123,Najibah Malikah14,Harms Corinna5,Žitka Jan6,Hnát Jaromír7,Bouzek Karel7

Affiliation:

1. Center for Hydrogen and Fuel Cell Research, Korea Institute of Science and Technology, Seongbuk-gu, Seoul 02792, South Korea;

2. Division of Energy & Environment Technology, KIST School, University of Science and Technology, Seoul 02792, South Korea;

3. Green School, Korea University, Seongbukgu, Seoul 02841, South Korea

4. Division of Energy & Environment Technology, KIST School, University of Science and Technology, Seoul 02792, South Korea

5. DLR Institute of Networked Energy Systems, Carl-von-Ossietzky-Street 15, 26129 Oldenburg, Germany

6. Institute of Macromolecular Chemistry, Academy of Sciences of the Czech Republic, 162 06 Praha 6, Czech Republic

7. Department of Inorganic Technology, University of Chemistry and Technology, Prague, Technická 5, 166 28 Praha 6, Czech Republic

Abstract

Abstract One promising way to store and distribute large amounts of renewable energy is water electrolysis, coupled with transport of hydrogen in the gas grid and storage in tanks and caverns. The intermittent availability of renewal energy makes it difficult to integrate it with established alkaline water electrolysis technology. Proton exchange membrane (PEM) water electrolysis (PEMEC) is promising, but limited by the necessity to use expensive platinum and iridium catalysts. The expected solution is anion exchange membrane (AEM) water electrolysis, which combines the use of cheap and abundant catalyst materials with the advantages of PEM water electrolysis, namely, a low foot print, large operational capacity, and fast response to changing operating conditions. The key component for AEM water electrolysis is a cheap, stable, gas tight and highly hydroxide conductive polymeric AEM. Here, we present target values and technical requirements for AEMs, discuss the chemical structures involved and the related degradation pathways, give an overview over the most prominent and promising commercial AEMs (Fumatech Fumasep® FAA3, Tokuyama A201, Ionomr Aemion™, Dioxide materials Sustainion®, and membranes commercialized by Orion Polymer), and review their properties and performances of water electrolyzers using these membranes.

Funder

European Commission

National Research Foundation of Korea

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

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