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Updated: Aug 27, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
CO2 Electroreduction in Water with a Heterogenized C-Substituted Nickel Cyclam Catalyst
Silvia Pugliese1,2, Ngoc Tran Huan1, Albert Solé-Daura1
1Laboratoire de Chimie des Processus Biologiques, UMR CNRS 8229, Collège de France-CNRS-Sorbonne Université, PSL Research University, 11 Place Marcelin Berthelot, 75231 Paris Cedex 05, France.
Researchers developed a novel nickel-cyclam catalyst immobilized on carbon nanotubes for efficient carbon dioxide electroreduction to carbon monoxide. This new electrode demonstrates high selectivity and performance in both organic solvents and water.
Area of Science:
- Electrochemistry
- Materials Science
- Catalysis
Background:
- Molecular catalysts enable selective carbon dioxide (CO2) electroreduction to carbon monoxide (CO).
- Immobilizing catalysts on solid supports is crucial for practical applications in electrolytic cells, offering benefits like product separation, enhanced electron transfer, and stability.
- This immobilization strategy for molecular CO2 electroreduction catalysts remains underexplored.
Purpose of the Study:
- To develop a novel immobilized molecular catalyst for selective CO2 electroreduction to CO.
- To investigate the performance of the immobilized catalyst in both organic and aqueous media.
- To create a robust electrode material for efficient CO2 conversion.
Main Methods:
- Synthesis of a novel [Ni(cyclam)]2+ complex with a modified cyclam ligand.
- Immobilization of the nickel complex onto carbon nanotubes.
- Deposition of the functionalized carbon nanotubes onto a gas diffusion layer to create a novel electrode.
- Electrochemical characterization using controlled potential electrolysis in H-cells.
Main Results:
- The novel immobilized [Ni(cyclam)]2+ complex on carbon nanotubes exhibits remarkable selectivity for CO2 electroreduction to CO.
- High faradaic efficiencies for CO production (>90%) were achieved.
- The electrode demonstrated effective performance in both organic solvents and, notably, in water, with current densities of 5-10 mA cm-2.
Conclusions:
- The developed immobilized nickel-cyclam catalyst on carbon nanotubes represents a significant advancement in CO2 electroreduction technology.
- The electrode's ability to operate effectively in water broadens its potential applications for sustainable chemical synthesis.
- This work highlights the potential of immobilized molecular catalysts for efficient and selective electrochemical CO2 conversion.
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