Active Chemistry Clean Energy
Renewable Electrochemical Advanced Conversion of CO2 to Target products
Summary
Original abstract (not yet simplified)The global production of ethylene exceeds that of any other organic compound, with 317 million tonnes produced each year. It is extensively used in both the EU and global chemical industries, serving as an important C2 building block for various products, including polyethylene. Currently, the primary method of ethylene synthesis relies on steam cracking of fossil hydrocarbons, which accounts for...
View original technical description
The global production of ethylene exceeds that of any other organic compound, with 317 million tonnes produced each year. It is extensively used in both the EU and global chemical industries, serving as an important C2 building block for various products, including polyethylene. Currently, the primary method of ethylene synthesis relies on steam cracking of fossil hydrocarbons, which accounts for over 95% of global production. However, this process has high energy demands and results in annual CO2eq emissions of 260Mt, approximately 30% of the total CO2 footprint of the chemical industry.This reliance on fossil fuels presents an opportunity for the gradual substitution of fossil-based feedstocks by converting industrial CO2 into ethylene using renewable energy. This shift would directly contribute to emission reductions, enhance energy security and improve EU autonomy. A significant barrier, however, is that industrial CO2 streams from hard-to-abate industries contain impurities that can poison conventional catalysts, necessitating costly pre-treatment. This highlights the need for solutions capable of handling lower-purity CO2 streams to improve overall efficiency and economic feasibility.The REACT project is designed to deliver an innovative solution for recycling CO2 that unlocks its economic potential. The project will develop an impurity-tolerant tandem electrochemical process capable of directly converting these less pure industrial CO2 streams into a valuable ethylene mixture. This approach reduces the capital intensity, energy requirements, and environmental footprint of the conversion technology. The resulting ethylene mixture will be validated for the production of high-value materials, including polyethylene packaging, surfactants, and automotive polymers, thereby strengthening the industrial carbon management value chain and creating a pathway for CO2-derived products to be competitively priced in the market.
Related Research
Grants with similar aims, by meaning.
Selective Electrochemical Reduction of CO2 to High Value Chemicals
CO2-based Electrosynthesis of ethylene oXIDE
Nano-Engineered Co-Ionic Ceramic Reactors for CO2/H2O Electroconversion to Light Olefins
C-Circ: Accelerating the translation of CO2 Electrolysers
Nano-Engineered Co-Ionic Ceramic Reactors for CO2/H2O Electro-conversion to Light Olefins
Original classification
HORIZONPlain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research. Is something wrong? Let us know