RENEW · Renewable Energy through New Electrolysis catalysts for Water splitting
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-06-29 → 2022-06-28
- EU contribution
- €160,932
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Renewable Energy through New Electrolysis catalysts for Water splitting
Storage and dissemination of clean energy from a renewable feedstock is one of the biggest challenges facing humanity. Electrocatalytic water splitting is an attractive scheme for the production of H2 as a carbon-neutral fuel and feedstock chemical that can be generated from renewable sources such as solar, wind, or geothermal. Electrocatalytic water splitting uses electrical energy generated from a renewable external source, such as solar, to split water (H2O) into hydrogen (H2—produced via proton reduction) and oxygen (O2—produced via water oxidation). The produced H2 can then be collected and used as a clean, carbon-neutral fuel, or feedstock for other commodity chemical production such as N2 hydrogenation to ammonia. Current state-of-the-art electrolyzers consist of alkaline electrolysis (AEL) using a diaphragm to separate the electrodes, proton-exchange polymer electrolyte membrane electrolysis (PEMEL) in neutral or acidic media, and alkaline anion exchange membrane electrolysis (AEMEL). While AEL is a mature technology, it is limited by the purity of the gases produced and the pressure at which it can produce H2. On the other hand, PEMEL uses an ionically conducting membrane to separate the anodic and cathodic chambers, allowing a much more pure and higher pressure of H2 produced. However, PEMEL suffers from the use of noble metal catalysts, such as IrOx and IrRuOx for the oxygen evolution reaction (OER), while other earth-abundant catalysts based on Co, Ni, and Fe are unstable in the acidic conditions for PEMEL. AEMEL, on the other hand, can operate with earth-abundant catalyst, but are limited by the overpotential required for higher current density, creating larger power loss for the system. Green hydrogen, i.e., hydrogen produced from the electrolysis of water, is a carbon-neutral fuel that can be generated using renewable energy and disseminated widely, thereby decarbonizing the global economy and creating the conditions for a sustainable future in Europe and the world. The RENEW project has synthesized new, highly performing, inexpensive OER catalysts for the production of green hydrogen. These catalysts outperform the state-of-the-art and are less expensive to synthesize. Thus, we as a society are closer towards a sustainable future, and opens the door towards scientific and economic opportunities to be exploited from these developments. This project, Renewable Energy through New Electrolysis catalysts for Water splitting (RENEW), specifically aimed to examine novel electrode/catalyst materials and architectures to improve intrinsic catalyst activity and stability for use in water electrolysis. The specific objectives of RENEW were the following: Objective 1: Fabrication, Activity and Stability of new Electrode/Catalysts based on Earth Abundant Metals. Objective 2: Development of Nanostructured Electrode/Catalyst Assemblies.
Data: CORDIS, © European Union
Project objective
Inexpensive, renewable energy storage is vital for the future of humanity. Generating H2 via water splitting in proton exchange membrane (PEM) electrolysis is a promising route for renewable fuel production. Wide-spread use of PEM electrolysis is limited by the high cost of the electrocatalysts which are composed of rare-earth metals such as Ir, Ru, and Pt (the catalysts being ~40% of the fabrication cost of PEM cells). Renewable Energy through New Electrolysis catalysts for Water splitting (RENEW) aims to develop, characterize, and mechanistically understand water oxidation catalysts (WOCatalysts) based on earth-abundant metals embedded in planar and nanostructured electrodes to replace rare-earth metals in PEM electrolysis. The specific goals of RENEW are (i) fabricate planar electrode/catalysts composed earth abundant metals such as Co, Fe, and Ni and based on recent advances in stabilizing these catalyts; (ii) determine the intrinsic activity, electrocatalytic current density, and lifetime of the electrode/catalyst assemblies; (iii) develop an understanding of the relationship between the electrode substrate and the stability and activity of the WOCatalysts; and (iv) fabricate nano-structured catalyst/electrode assemblies based on the most promising results of specific goals i-iii.The results of this project have the potential to greatly reduce the cost of H2 generated from renewable energy sources such as solar, wind, or geothermal and thereby transform the European and global energy sectors, which aligns with the Horizon 2020 work programme of “Secure, Clean and Efficient Energy”. Throughout this project I will learn new techniques relevant to industrial catalysis, develop my skills as an independent researcher and mentor, and expand my network to include international collaborations and relationships as I transition to an established researcher.
Original text from CORDIS.
Participants
- FUNDACIO INSTITUT CATALA D'INVESTIGACIO QUIMICA · TARRAGONACoordinatorSpain
Links
Data: CORDIS, © European Union
