Critical Raw materials Elimination by a top-down Approach To hydrogen and Electricity generation

Acronym

CREATE

Description of the granted funding

CREATE aims at developing innovative membrane electrode assemblies for low-temperature polymer-electrolyte fuel cell (FC) and electrolyzer (EL) with much reduced cost. This will be achieved via elimination or drastic reduction of critical raw materials in their catalysts, in particular platinum group metals (PGM). Key issues with present low-temperature FC & EL are the high contents of PGM in devices based on proton-exchange-membrane (PEM) and the need for liquid electrolytes in alkaline FC and EL. To overcome this, we will shift from PEM-based cells to 1) pure anion-conducting polymer-electrolytes and 2) to bipolar-membrane polymer electrolytes. The latter comprises anion and proton conducting ionomers and a junction. Bipolar membranes allow adapting the pH at each electrode, thereby opening the door to improved performance or PGM-free catalysts. Both strategies carry the potentiality to eliminate or drastically reduce the need for PGM while maintaining the advantages of PEM-based devices. In strategy 1, novel anion-exchange ionomers and membranes will be developed and interfaced with catalysts based on Earth-abundant metal oxides or metal-carbon composites for the oxygen reactions, and with ultralow PGM or PGM-free catalysts for the hydrogen reactions. In strategy 2, novel bipolar membrane designs, or designs unexplored for FC & EL, will be developed and interfaced with catalysts for the oxygen reactions (high pH side of the bipolar membrane) and with catalysts for the hydrogen reactions (low pH side). The ionomers and oxygen reaction catalysts developed in strategy 1 will be equally useful for strategy 2, while identified PGM-free and ultralow-PGM catalysts will be implemented for the hydrogen reactions on the acidic side. Polymer-electrolyte FC & EL based on those concepts will be evaluated for targeted applications, i.e. photovoltaic electricity storage, off-grid back-up power and H2 production. The targeted market is distributed small-scale systems.
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Starting year

2017

End year

2020

Granted funding

474 588.75 €
Participant
UNIVERSITE DE MONTPELLIER (FR)
45 263.98 €
Third party
ITM POWER (TRADING) LIMITED (UK)
374 200 €
Participant
PRETEXO (FR)
88 059.5 €
Participant
EIFER EUROPAISCHES INSTITUT FUR ENERGIEFORSCHUNG EDF KIT EWIV (DE)
365 781.25 €
Participant
FUMATECH BWT GMBH (DE)
512 375 €
Participant
NORTHEASTERN UNIVERSITY (US)
Participant
FUNDACIO PRIVADA INSTITUT CATALA D'INVESTIGACIO QUIMICA (ES)
350 625 €
Participant
UNIVERSITA DEGLI STUDI DI ROMA TOR VERGATA (IT)
403 750 €
Participant
TECHNION - ISRAEL INSTITUTE OF TECHNOLOGY (IL)
699 423.75 €
Participant
FORSCHUNGSZENTRUM JULICH GMBH (DE)
451 551.25 €
Participant
CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS (FR)
552 859.54 €
Coordinator

Amount granted

4 318 478 €

Funder

European Union

Funding instrument

Research and Innovation action

Framework programme

Horizon 2020 Framework Programme

Call

Programme part
INDUSTRIAL LEADERSHIP - Leadership in enabling and industrial technologies - Advanced materials (5256)
Topic
Innovative and sustainable materials solutions for the substitution of critical raw materials in the electric power system (NMBP-03-2016)
Call ID
H2020-NMBP-2016-two-stage

Other information

Funding decision number

721065

Identified topics

machines, power engines