GAIA

next Generation AutomotIve membrane electrode Assemblies

Coordinator3M DEUTSCHLAND GMBH ; FREUDENBERG PERFORMANCE MATERIALS SE & CO KG ; DYNEON GMBH ; Technical University Munich ; CNRS - Institut des Sciences Biologiques ; Zentrum für Sonnenenergie- und Wasserstoff-Forschung Baden-Württemberg ; JOHNSON MATTHEY FUEL CELLS LIMITED ; PRETEXO ; BAYERISCHE MOTOREN WERKE AKTIENGESELLSCHAFT ; ELMARCO SRO ; Technical University of Berlin
Grant period2019-01-01 - 2022-06-30
Funding bodyEuropean Union
Call numberH2020-JTI-FCH-2018-1
Grant number826097
IdentifierG:(EU-Grant)826097

Note: GAIA has the overall aim of developing high power and high current density automotive MEAs well beyond the current state of the art up to TRL5. This project, encompassing OEMs, leading industrial and academic/research organisation/research institute partners with long expertise in fuel cell science and technology, and building on best developments from the FCHJU, will not only provide significantly higher performance MEAs but will also ensure the designs satisfy the cost, durability and operational targets set by the call. Accordingly, the specific objectives of the project are to: - Develop world-leading components (electrocatalysts, membranes, gas diffusion and microporous layers) and improve the interfaces between them to minimise resistances; - Realise the potential of these components in next generation MEAs showing a step-change in performance that will largely surpass the state of the art by delivering a beginning of life power density of 1.8 W/cm2 at 0.6 V; - Validate the MEA performance and durability in full size cell short stacks, with durability tests of 1000 h with extrapolation to 6,000 h; - Provide a cost assessment study that demonstrates that the MEAs can achieve the cost target of 6 €/kW for an annual production rate of 1 million square metres.
     

Recent Publications

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http://join2-wiki.gsi.de/foswiki/pub/Main/Artwork/join2_logo100x88.png Journal Article  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;  ;
Enhancing the Performance of Shape-Controlled Octahedral Rhodium-Doped PtNi Nanoalloys inside Hydrogen–Air Fuel Cell Cathodes Using a Rational Design of Catalysts, Supports, and Layering
ACS catalysis 14(XXX), 10 - 20 () [10.1021/acscatal.3c02619] Embargoed OpenAccess  Download fulltext Files BibTeX | EndNote: XML, Text | RIS

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 Datensatz erzeugt am 2020-01-06, letzte Änderung am 2023-02-13



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