Innovating Works
HORIZON-JTI-CLEANH2-2023-...
HORIZON-JTI-CLEANH2-2023-01-01: Innovative electrolysis cells for hydrogen production
Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments since the beginning of last century. Nevertheless, it still needs significant improvements. Despite the incremental type of research, a seek for breakthrough solutions should be incorporated into the research performed to transform the technology. These can include novel designs of the cells, as well as application of the disruptive components and introduction of innovative ideas synergistically resulting in systems able, through the continuity of the further research, to fulfil the needs of the gigawatt sized storage of renewable energy.
Sólo fondo perdido 0 €
Europeo
Esta convocatoria está cerrada Esta línea ya está cerrada por lo que no puedes aplicar.
Se espera una próxima convocatoria para esta ayuda, aún no está clara la fecha exacta de inicio de convocatoria.
Presentación: Consorcio Consorcio: Esta ayuda está diseñada para aplicar a ella en formato consorcio..
Esta ayuda financia Proyectos:

Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments since the beginning of last century. Nevertheless, it still needs significant improvements. Despite the incremental type of research, a seek for breakthrough solutions should be incorporated into the research performed to transform the technology. These can include novel designs of the cells, as well as application of the disruptive components and introduction of innovative ideas synergistically resulting in systems able, through the continuity of the further research, to fulfil the needs of the gigawatt sized storage of renewable energy.

However, potential availability of systems of such magnitude is quickly transforming electrolytic hydrogen into an industrial commodity and significant barriers with regards to the use of electrolyser devices at such scale remain. Green hydrogen is on average still more expensive than hydrogen produced from reformatted natural gas. Henceforth, innovative actions will be required to: i) remarkably improve the voltage efficiency of water electrolysers ii) dramatically reduce the cost of these devices... ver más

Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments since the beginning of last century. Nevertheless, it still needs significant improvements. Despite the incremental type of research, a seek for breakthrough solutions should be incorporated into the research performed to transform the technology. These can include novel designs of the cells, as well as application of the disruptive components and introduction of innovative ideas synergistically resulting in systems able, through the continuity of the further research, to fulfil the needs of the gigawatt sized storage of renewable energy.

However, potential availability of systems of such magnitude is quickly transforming electrolytic hydrogen into an industrial commodity and significant barriers with regards to the use of electrolyser devices at such scale remain. Green hydrogen is on average still more expensive than hydrogen produced from reformatted natural gas. Henceforth, innovative actions will be required to: i) remarkably improve the voltage efficiency of water electrolysers ii) dramatically reduce the cost of these devices with the largest share for capital cost still occurring at the stack level, iii) reach durability and robustness levels that are compatible with today’s stationary energy systems and iv) address breakthrough solutions for innovative processes such as direct electrolysis of sea water and wastewater.

Hence, the development of disruptive components and cell concepts leading to a dramatical change in efficiency, lifetime, and reducing the total cost of ownership of hydrogen in electrolysis is the goal, transforming these electrolysers into devices of next generation. To the most part, classic alkaline (AEL) and polymer electrolyte membrane (PEM) electrolysis have stacks with materials and components that were developed in the last century. Thick inorganic diaphragms, rudimentary designs for electrodes and porous transport layers, PGM based catalysts and protective layers, and membranes that still fail to avoid gas-crossover at high differential pressure, can be significantly improved for next generation water electrolysers.

Innovative electrolysis cells can be only achieved by a multidisciplinary approach combining outstanding advances such as but not limited to materials science, nano-engineering, bio-hybrids catalysts (such as natural or engineered enzymes, peptides and protein based-maquettes or whole cells interfaced with electroactive materials and/or polymers or combined with organometallics clusters from separate synthesis), and innovative manufacturing approaches. It is expected creation of materials, components, and innovative cell designs that can completely change the paradigm of hydrogen production using devices with improved levels of efficiency, cost, and durability.

Project results are expected to contribute to all of the following expected outcomes:

Transform electrolysers into next generation devices with a higher level of competitiveness in comparison to classic AEL and PEM electrolysers.Develop materials that can be used in and/or adapted to water electrolysers. These materials should be fabricated into components with high efficiency, stability, recyclability, no CRMs, the ability to mass-production and a circular-economy character.Open new ways for disruptive concepts towards performance levels close to the theoretical Higher Heating Value (HHV) of these electrolysers, i.e., higher to what is typically observed in cells and stacks for conventional AELs and PEMELs. Project results are expected to contribute to the following objectives and KPIs of the Clean Hydrogen JU SRIA:

Strongly reduce the overall use of critical raw materials in the fabrication of cell/stack components to < 1.25 mg/W per cell for PEM electrolysers, and to < 0.3 mg/W for alkaline cells.Decrease the electricity consumption at nominal capacity aiming at values below 48 kWh/kg of hydrogen.Eliminate or dramatically reduce interface resistance values across cell components.Develop diaphragms, membranes, or membrane-less electrolysers that can operate at minimum 5% of partial load operation (nominal load 2 A/cm2 for PEM and 0.5 A/cm2 for alkaline cells) without exceeding 0.4 % of H2 concentration in O2.Long-term stable and efficient materials for high-current density operation, i.e., 1.0 A/cm2 for AEL and 3.0 A/cm2 for PEM. Scope:This topic aims at the development of new and disruptive cell concepts for improving efficiency, lifetime, and hydrogen production processes in the field of water electrolysis, while replacing costly materials on components of the cell and stack. The topic seeks the integration of recent advances in materials science and modern characterisation/fabrication tools, merged into innovative lab scale developments of components of electrolysis cells. The target is to realise at least single cells of TRL 4 and validate all innovative approaches using single cells and short stacks with min. 5 cells.

Proposals should explore more than one of the following innovations: ​

Alternative pathways to the oxygen evolution reaction by new anode approaches which allow to reduce the anode potential in acidic media;Inclusion of redox mediators to separate anode and cathode reactions;Use of nano-engineering, bio-hybrid electrocatalyst materials or integrated multi-functional components as innovative strategies to improve cell performances;Application/development of catalysts with low overpotential and combined to low-cost elements (e.g., Fe, Ni, steel), bridging a gap to have stable and low-cost production;Novel concepts of triple-phase boundary electrodes (catalyst-support-ionomer) with catalyst utilisation close to 100% and improved thermo-mechanical stability;Create novel concepts of membrane electrode assemblies (MEAs) with integrated components (Porous Transport Electrodes (PTEs)), simplified and environmentally friendly manufacturing methods;Novel cell design to enhance overall cell efficiency by integrating disruptive concepts (e.g., flow fields using new fluid dynamic effects, novel concepts of micro-fluidic and capillary-fed electrolysers, optimised interfaces between cell materials, or innovative stack components designs);Optimised thermal management, e.g., avoiding hot spots in the cells as major cause for catalyst and separator degradation;Consortia are expected to build on the expertise coming from both research and industrial community to ensure broad impact by addressing several of the aforementioned items. Development of Solid-oxide or Proton Conductive materials and cells are excluded from the scope of this specific topic.

It is expected to have access to application based as well as manufacturability requirements (through direct participation of a manufacturing company and/or through an advisory board), to foresee a scaling up of the validated solution.

Proposals are expected to collaborate and explore synergies with the projects supported under topics HORIZON-JTI-CLEANH2-2023 -07-02: ‘Increasing the lifetime of electrolyser stacks’ and HORIZON-JTI-CLEANH2-2022-07-01: ‘Addressing the sustainability and criticality of electrolyser and fuel cell materials’.

Applicants are encouraged to address sustainability and circularity aspects in the activities proposed.

Activities developing test protocols and procedures for the performance and durability assessment of electrolysers and fuel cell components proposals should foresee a collaboration mechanism with JRC (see section 2.2.4.3 "Collaboration with JRC"), in order to support EU-wide harmonisation. Test activities should adopt the already published EU harmonised testing protocols[1] to benchmark performance and quantify progress at programme level.

Activities are expected to start at TRL 2 and achieve TRL 4 by the end of the project - see General Annex B.

The JU estimates that an EU contribution of maximum EUR 3.00 million would allow these outcomes to be addressed appropriately.

The conditions related to this topic are provided in the chapter 2.2.3.2 of the Clean Hydrogen JU 2023 Annual Work Plan and in the General Annexes to the Horizon Europe Work Programme 2023–2024 which apply mutatis mutandis.

[1] https://www.clean-hydrogen.europa.eu/knowledge-management/collaboration-jrc-0_en

ver menos

Temáticas Obligatorias del proyecto: Temática principal:

Características del consorcio

Ámbito Europeo : La ayuda es de ámbito europeo, puede aplicar a esta linea cualquier empresa que forme parte de la Comunidad Europea.
Tipo y tamaño de organizaciones: El diseño de consorcio necesario para la tramitación de esta ayuda necesita de:

Características del Proyecto

Requisitos de diseño: Duración:
Requisitos técnicos: Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments since the beginning of last century. Nevertheless, it still needs significant improvements. Despite the incremental type of research, a seek for breakthrough solutions should be incorporated into the research performed to transform the technology. These can include novel designs of the cells, as well as application of the disruptive components and introduction of innovative ideas synergistically resulting in systems able, through the continuity of the further research, to fulfil the needs of the gigawatt sized storage of renewable energy. Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments since the beginning of last century. Nevertheless, it still needs significant improvements. Despite the incremental type of research, a seek for breakthrough solutions should be incorporated into the research performed to transform the technology. These can include novel designs of the cells, as well as application of the disruptive components and introduction of innovative ideas synergistically resulting in systems able, through the continuity of the further research, to fulfil the needs of the gigawatt sized storage of renewable energy.
¿Quieres ejemplos? Puedes consultar aquí los últimos proyectos conocidos financiados por esta línea, sus tecnologías, sus presupuestos y sus compañías.
Capítulos financiables: Los capítulos de gastos financiables para esta línea son:
Personnel costs.
Subcontracting costs.
Purchase costs.
Other cost categories.
Indirect costs.
Madurez tecnológica: La tramitación de esta ayuda requiere de un nivel tecnológico mínimo en el proyecto de TRL 4:. Es el primer paso para determinar si los componentes individuales funcionarán juntos como un sistema en un entorno de laboratorio. Es un sistema de baja fidelidad para demostrar la funcionalidad básica y se definen las predicciones de rendimiento asociadas en relación con el entorno operativo final. + info.
TRL esperado:

Características de la financiación

Intensidad de la ayuda: Sólo fondo perdido + info
Fondo perdido:
0% 25% 50% 75% 100%
Para el presupuesto subvencionable la intensidad de la ayuda en formato fondo perdido podrá alcanzar como minimo un 100%.
The funding rate for RIA projects is 100 % of the eligible costs for all types of organizations. The funding rate for RIA projects is 100 % of the eligible costs for all types of organizations.
Garantías:
No exige Garantías
No existen condiciones financieras para el beneficiario.

Información adicional de la convocatoria

Efecto incentivador: Esta ayuda no tiene efecto incentivador. + info.
Respuesta Organismo: Se calcula que aproximadamente, la respuesta del organismo una vez tramitada la ayuda es de:
Meses de respuesta:
Muy Competitiva:
No Competitiva Competitiva Muy Competitiva
No conocemos el presupuesto total de la línea pero en los últimos 6 meses la línea ha concecido
Total concedido en los últimos 6 meses.
Minimis: Esta línea de financiación NO considera una “ayuda de minimis”. Puedes consultar la normativa aquí.

Otras ventajas

Sello PYME: Tramitar esta ayuda con éxito permite conseguir el sello de calidad de “sello pyme innovadora”. Que permite ciertas ventajas fiscales.
HORIZON-JTI-CLEANH2-2023-1 Innovative electrolysis cells for hydrogen production Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments si...
Sin info.
HORIZON-JTI-CLEANH2-2023-05-03 Pre-Normative Research on the determination of hydrogen releases from the hydrogen value chain
en consorcio: Expected Outcome:The EU’s Hydrogen Strategy[1], REPowerEU[2] and other relevant European initiatives, clearly recognise clean hydrogen and i...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-07-02 Increasing the lifetime of electrolyser stacks
en consorcio: Expected Outcome:Hydrogen can be used as a feedstock, a fuel, an energy carrier in electrolyser technologies, and thus has many possible app...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-03-01 Real environment demonstration of Non-Road Mobile Machinery (NRMM)
en consorcio: Expected Outcome:Internal combustion engines (ICEs) in Non-Road Mobile Machinery[1] (NRMM) (e.g. diesel or gasoline fuelled) significantly c...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-01 Innovative electrolysis cells for hydrogen production
en consorcio: Expected Outcome:Water electrolysis for hydrogen production is a mature and well-established technology with major industrial deployments si...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-07 Hydrogen use by an industrial cluster via a local pipeline network
en consorcio: Expected Outcome:Renewable hydrogen offers industry the means to decarbonise thermal and chemical processes that currently rely on fossil fu...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-02 Innovative Solid Oxide electrolysis cells for intermediate temperature hydrogen production
en consorcio: Expected Outcome:Large scale sustainable hydrogen production is necessary to implement hydrogen as an energy vector in a future decarbonised...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-06 Valorisation of by-product O2 and/or heat from electrolysis
en consorcio: Expected Outcome:Large scale economically viable hydrogen production is necessary to implement the ambition of the “Hydrogen Strategy for a...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-05 Waste to Hydrogen demonstration plant
en consorcio: Expected Outcome:The sustainable wastes management in Europe is an emerging issue of the circular economy due to the restrictions given by E...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-03-03 Ultra-low NOx combustion system for aviation
en consorcio: Expected Outcome:The use of hydrogen as an aviation fuel allows to eliminate the direct CO2 emissions from aircraft engines completely and t...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-06-01 Large-scale Hydrogen Valley
en consorcio: Expected Outcome:A Hydrogen Valley typically require a multi-million EUR investment and cover all necessary steps in the hydrogen value chai...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-06-02 Small-scale Hydrogen Valley
en consorcio: Expected Outcome:A Hydrogen Valley typically require a multi-million EURO investment and cover all necessary steps in the hydrogen value cha...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-07-01 Advanced materials for hydrogen storage tanks
en consorcio: Expected Outcome:For hydrogen, as well as its derivatives, to be a truly sustainable energy vector and part of a future sustainable energy s...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-05-02 European Hydrogen Academy
en consorcio: Expected Outcome:The European Commission is placing skills at the heart of the policy agenda, steering investment in people and education an...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-04-02 Research on fundamental combustion physics, flame velocity and structure, pathways of emissions formation for hydrogen and variable blends of hydrogen, including ammonia
en consorcio: Expected Outcome:Hydrogen is a potential enabler of a low-carbon economy and can be a key instrument for the European Green Deal and the rec...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-02-01 Large-scale demonstration of underground hydrogen storage
en consorcio: Expected Outcome:Large-scale hydrogen storage has the potential to enable the integration of intermittent renewable energy sources in the ga...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-02-02 Pre-Normative Research about the compatibility of transmission gas grid steels with hydrogen and development of mitigation techniques
en consorcio: Expected Outcome:This topic is aimed at accelerating the deployment of a safe, flexible, and efficient hydrogen grid by repurposing part of...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-02-05 Demonstration of LH2 HRS for Heavy Duty applications
en consorcio: Expected Outcome:The topic aims to develop and demonstrate the technological foundations of large LH2 refuelling stations for the heavy-duty...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-03-02 Development of a large fuel cell stack for maritime applications
en consorcio: Expected Outcome:Hydrogen as fuel for the maritime sector could be pivotal to foster global maritime decarbonisation as it has significant a...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-04-01 Development and validation of high power and impurity tolerant fuel cell systems ready to run on industrial quality dry hydrogen
en consorcio: Expected Outcome:Hydrogen offers a unique chance to decarbonise the power generation and heating sectors reliably and independently from wea...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-04-04 Hydrogen for heat production for hard-to-abate industries (e.g. retrofitted burners, furnaces)
en consorcio: Expected Outcome:When produced with renewable or low-carbon energy sources, hydrogen represents a unique opportunity for the decarbonisation...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-04-03 Retrofitting of existing industrial sector natural gas turbomachinery cogeneration systems for hydrogen combustion
en consorcio: Expected Outcome:In the gas transmission systems, gas turbines in simple and combined cycles, can achieve a significant reduction of atmosph...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-02-04 Demonstration of high pressure (500-700 bar) supply chain
en consorcio: Expected Outcome:In order to contribute to the 2030 Climate plan and Green Deal, it is of the utmost importance to improve the Gaseous Hydro...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-03 Advances in alkaline electrolysis technology
en consorcio: Expected Outcome:At present, Europe has an industrial leadership on electrolyser technologies with about two thirds of main players globally...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-02-03 Novel insulation concepts for LH2 storage tanks
en consorcio: Expected Outcome:An important element of the European Hydrogen Strategy is to support the deployment of LH2 for heavy duty applications and...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-05-01 Product environmental footprint pilot for a set of FCH product categories
en consorcio: Expected Outcome:Environmental sustainability of FCH systems is a key requirement in the path towards a hydrogen economy, with important eff...
Cerrada | Próxima convocatoria prevista para el mes de
HORIZON-JTI-CLEANH2-2023-01-04 Photoelectrochemical (PEC) and/or Photocatalytic (PC) production of hydrogen
en consorcio: Expected Outcome:Photo(electro)chemical systems have been identified as one of the promising technologies to meet long-term hydrogen-product...
Cerrada | Próxima convocatoria prevista para el mes de