RenewCO2's modular electrocatalytic carbon utilization (eCUT) technology integrates with existing MEG facilities to convert waste CO2 into carbon negative, cost competitive mono ethylene glycol (MEG) with oxygen as a byproduct. The proprietary catalyst achieves >90% faradaic efficiency and >92% selectivity to MEG, enabling trivial product separation and reducing capital requirements for deployment.
RenewCO2 has developed a modular electrocatalytic carbon utilization technology (eCUT) that converts concentrated CO2 waste streams into mono ethylene glycol (MEG), a widely used industrial chemical. The technology is designed to integrate directly with existing fossil-based MEG production facilities, capturing their concentrated CO2 waste output and transforming it into carbon negative MEG at cost competitive prices, with oxygen generated as a byproduct.
This approach addresses a critical challenge in industrial decarbonization: rather than requiring entirely new production infrastructure, the eCUT module retrofits into established MEG plants, minimizing the capital investment needed to scale and deploy. By turning a waste liability into a value added product, the technology offers chemical manufacturers a pathway to reduce greenhouse gas emissions while maintaining or improving cost competitiveness.
Key features:
How it works:
The system uses an electrochemical reduction process powered by the proprietary catalyst. Unlike competing electrochemical CO2 reduction approaches that rely on different catalysts and struggle with either low faradaic efficiency or poor product selectivity (requiring energy intensive separation), RenewCO2's process achieves both high efficiency and high selectivity simultaneously. This combination is what enables cost competitive production.
The technology has been validated at laboratory scale, demonstrating both the high faradaic efficiency and high MEG selectivity that underpin the cost competitive carbon negative production claim. The next development milestone is scaling from a single 100 cm² cell to a 5x500 cm² cell stack capable of extended operation. This larger lab scale will produce a few kilograms of MEG per day for applications testing while providing critical data on catalyst robustness and tolerance to CO2 impurities. The technology is at an early-to-mid stage of development, progressing from bench scale validation toward larger scale demonstration and eventual commercial deployment in partnership with MEG producers.
RenewCO2 is a Rutgers University spin-out focused on sustainable chemical production through innovative electrochemical processes, aiming to reduce global industrial greenhouse gas emissions and promote energy independence.