H2020Doctoral network2017–2021

ELCOREL · Electrochemical Conversion of Renewable Electricity into Fuels and Chemicals

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-05-01 → 2021-04-30
EU contribution
€3,616,665
Participants
7
Scheme
MSCA-ITN-ETN

Lines connect the coordinator with its partners.

Results in brief

Electrochemical Conversion of Renewable Electricity into Fuels and Chemicals

The efficient and environmentally sustainable generation of energy is the most pressing challenge for European science and technology in the 21st century. The increasing environmental awareness of European societies, together with depletion of easily accessible fossil fuels and geostrategic considerations, calls for a paradigm shift away from large-scale technologies that deploy limited reserves and generate huge amounts of waste. Renewable energy sources, such as biomass and solar or wind energy, are the only viable long-term alternative for an infrastructure based on the concepts of recycling and the distributed generation, storage and use of energy. The large-scale implementation of renewable energy sources necessitates the introduction of technology that can deal with the intermittent nature of renewable energy sources and their restricted predictability. These technical problems can be successfully mitigated through electrochemical technologies. While electricity is traditionally stored in electrochemical devices such as supercapacitors and batteries, large-scale implementation of renewable electricity will require to extend the existing energy storage technologies by the (photo-)electrochemical conversion to fuels and other chemicals, such as hydrogen obtained from water splitting, or small organic molecules obtained through electrochemical carbon dioxide reduction. The scientific objectives of ELCOREL are: (1) to deploy a systematic theoretical description of electrocatalysis by means of quantum chemical calculations to gain fundamental insight into the rational design of electrocatalysts for water oxidation and CO2 reduction; (2) to implement advanced techniques of material synthesis to prepare novel nano-particulate catalysts for multiple electron redox reactions meeting the predictions of the rational computational design; (3) to investigate the dynamics of nanostructured metal and metal-oxide interfaces in the electrocatalytic processes using state-of-the-art electrochemical and spectroscopic techniques and (4) to engineer the knowledge and materials developed under (1)-(3) into working electrochemical applications which meet the cost and scale requirements of the industrial partners, and (5) to transfer the knowledge to the public so that the society can discuss the best options for the implementation of the Paris agreement to reshape the society based on carbon energy into the one based on renewable energy sources.

Data: CORDIS, © European Union

Project objective

ELCOREL is a consortium combining 5 academic and 2 industrial beneficiaries aimed at training young researchers in the field of the conversion of water and carbon dioxide to fuels and chemicals with the aid of electrocatalysts, of prime importance to the efficient large-scale storage of the excess renewable electricity. The consortium will (i) develop rational catalyst design principles for the electrochemical oxidation of water and the electrochemical reduction of carbon dioxide based on the principles of quantum chemistry and large-scale quantum-chemical calculations, (ii) prepare, synthesize, characterize and test model single-crystalline and nanoparticulate catalysts, and (iii) implement high surface area catalysts in large-scale electrolysers at industrial laboratories. The fellows to be employed in ELCOREL will be part of a unique network of academic and industrial world leaders in their respective expertises, and will receive a dedicated multidisciplinary and intersectoral training through mandatory extensive training and research periods at the non-academic partners. Furthermore, they will go through an extensive training programme balancing scientific, personal andentrepreneurial skills. ELCOREL will generate a new generation of electrochemical researchers ready to deal with the academic and industrial challenges of securing Europe’s future energy independence.

Original text from CORDIS.

Participants

  • Heyrovskeho ustav AV CR, v. v. i. · PRAHACoordinatorCzechia
  • AALTO KORKEAKOULUSAATIO SR · EspooFinland
  • AVANTIUM CHEMICALS BV · AmsterdamNetherlands
  • FUNDACIO INSTITUT CATALA D'INVESTIGACIO QUIMICA · TARRAGONASpain
  • INDUSTRIE DE NORA SPA-IDN · MilanoItaly
  • KOBENHAVNS UNIVERSITET · KOBENHAVNDenmark
  • UNIVERSITEIT LEIDEN · LeidenNetherlands

Links

Data: CORDIS, © European Union