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Updated: Apr 3, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Long-term electrochemical CO2 reduction via electrode regeneration
Guorui Gao1, Gelson T da Silva1, Sukhjot Kaur1
1Department of Chemical Engineering, Queen's University, Kingston, ON, K7L 3N6, Canada. caothang.dinh@queensu.ca.
None:
Electrochemical CO2 reduction (eCO2RR) offers a direct route to convert waste carbon into fuels and commodity chemicals using renewable electricity, but industrial translation is ultimately constrained by durability under high-rate operation. At practical current densities, performance losses rarely stem from a single failure mode. Instead, catalyst reconstruction and corrosion, impurity-driven poisoning, electrolyte flooding, and carbonate salt precipitation interact to undermine activity, selectivity, and stability. This Feature Article outlines the dominant electrode-level degradation pathways and then critically assesses regeneration strategies that restore performance without replacing electrodes. We review redox-based catalyst reactivation and renewal, hydrophobicity recovery to re-establish stable gas transport pathways, and local-environment reset protocols that dissolve or prevent salt buildup. Together, these approaches reposition regeneration as an integral design standard for long-term CO2 electrolysis systems compatible with intermittent renewable power.
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