During the first 24 months, the RECALLCO2 project has made strong progress toward its main objectives while establishing the experimental foundations needed for long-term impact. This initial phase focused on training early-career researchers and building reliable experimental platforms for testing new electrochemical concepts and materials.
A central achievement has been the investigation of electrochemical CO2 conversion using membrane-based systems. We identified how operating conditions such as current density and electrolyte composition control ion transport across the membrane, which in turn affects water dissociation efficiency and material stability. Crucially, we demonstrated stable CO2 electrolysis for over 150 hours using nickel-based components, highlighting the necessary steps and tradeoffs to using non-precious metal anodes.
In further work we showed how crossover could be decreased to <2% by maximizing current density and minimizing anolyte concentrations. These efforts have also identified a strong inverse trade-off between CO2 electrolysis activity and membrane crossover, which must be carefully controlled to maintain the desired cathodic reaction combined with anode stability. The work concluded by outlining a plan for an elevated water dissociation efficiency of ~99%, combined with reasonable electrolyte volumes and periodic bipolar membrane electrodialysis to recover alkaline conditions, and thus utilize nickel anodes instead of iridium.
The project has also addressed fundamental energy limits of electrochemical reactions relevant to sustainable chemistry, including CO2 conversion, nitrate removal, and seawater electrolysis. We clarify how asymmetric operating conditions influence voltage requirements for aqueous-based systems, and a publication is currently in preparation.
In parallel, new methods were developed to study how molecular catalysts interact with their supporting materials. These advances allow active catalytic sites to be distinguished from inactive species, improving efficiency and reproducibility. Finally, new catalyst deposition strategies led to proof-of-concept CO and methanol production from CO2 using carbon-based nanomaterials, providing a strong foundation for the next phase of the project.