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Unlocking the Activity of Molecular Assemblies for CO2 Electroreduction in Zero-Gap Electrolysers via Catalyst Ink
Kevinjeorjios Pellumbi1, Mena-Alexander Kräenbring2, Dominik Krisch3
1Fraunhofer Institute for Environmental, Safety and Energy Technology UMSICHT, Osterfelderstraße 3, 46047, Oberhausen, Germany.
Small (Weinheim an Der Bergstrasse, Germany)
|October 31, 2024
Summary
Ink composition significantly impacts CO2 electrolysis performance. Tailoring solvent-catalyst mixtures in silver-bis(arylimino)-acenaphthene (Ag-BIAN) based gas diffusion electrodes (GDEs) enhances CO2 reduction efficiency in zero-gap electrolyzers (ZGEs).
Area of Science:
- Electrochemistry
- Catalysis
- Materials Science
Background:
- Electrochemical reduction of carbon dioxide (CO2) to carbon monoxide (CO) is crucial for sustainable chemical production.
- Silver-based catalysts, particularly Ag-BIAN complexes, offer tunable properties and high activity for CO2 electrolysis.
- Zero-gap electrolyzers (ZGEs) are advanced systems for efficient CO2 conversion.
Purpose of the Study:
- To investigate the effect of ink composition on the performance of Ag-BIAN based gas diffusion electrodes (GDEs) in ZGEs.
- To identify optimal solvent-catalyst and solvent-carbon additive combinations for GDE fabrication.
- To reduce the cost and time associated with optimizing GDEs for CO2 electrolysis.
Main Methods:
- Systematic exploration of ink compositions for Ag-BIAN GDEs.
- Sedimentation analyses to determine optimal solvent-catalyst and solvent-carbon additive interactions.
- Performance evaluation of GDEs in ZGEs at 60 °C and 600 mA cm⁻².
Main Results:
- Solvent choice and ink dilution critically influence CO2 reduction efficiency.
- Achieved up to 67% Faradaic efficiency for CO production (FECO) at 600 mA cm⁻².
- Demonstrated high performance with low catalyst loadings (0.2 mg cm⁻²).
Conclusions:
- Ink engineering is vital for optimizing Ag-BIAN GDEs in ZGEs.
- Findings facilitate the transition from laboratory-scale H-type cells to industrial ZGE systems.
- Tailored ink formulations enhance CO2 electrolysis efficiency and catalyst utilization.

