Asymmetric Ion Regulation for Stabilising Acidic CO2 Electrolysis and Chlorine Evolution in Zero-Gap Electrolysers

Abstract While CO2 reduction reaction (CO2RR) coupled with chlorine evolution reaction (CER) can enhance the energy efficiency and economic viability of CO2 electrolysis, its implementation in zero-gap membrane-electrode-assembly (MEA) electrolysers remains challenging as CER-compatible systems require acidic chloride-rich anolytes and chlorine-tolerant cation exchange membranes that induce detrimental cation crossover. The resulting disruption of the cathodic microenvironment causes (bi)carbonate precipitation, hydrogen evolution, and operational instability. Here we report an asymmetric ion-regulation strategy using chloride-bearing, water-miscible poly(diallyldimethylammonium chloride) in the anolyte to maintain high chloride availability for CER while reducing K+ crossover and modifying proton transport through the membrane. Optimised MEA electrolysers achieve about 90% Faradaic efficiencies for both CO and Cl2 and more than 200 h of cumulative operation under replenishment/maintenance protocols, advancing CO2RR-CER beyond laboratory flow-cell demonstrations toward zero-gap MEA operation. Techno-economic and life-cycle analyses indicate that Cl2 co-production can improve process economics under the stated assumptions and reduce the greenhouse-gas intensity of CO production by 75% relative to conventional CO2RR coupled with oxygen evolution benchmarks.

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Publication Details

Journal
ACS Energy Letters
Published
2026-10-04
DOI
https://doi.org/10.1021/acsenergylett.6c02502
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
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article

Asymmetric Ion Regulation for Stabilising Acidic CO2 Electrolysis and Chlorine Evolution in Zero-Gap Electrolysers

Changya Deng, Zhixin Luo, Sahil Garg, Yong Sheng Zhao et al.
ACS Energy Letters
CO2 Reduction Techniques and Catalysts
article

Asymmetric Ion Regulation for Stabilising Acidic CO2 Electrolysis and Chlorine Evolution in Zero-Gap Electrolysers

Changya Deng, Zhixin Luo, Sahil Garg, Yong Sheng Zhao, Tejas Bhatelia, Leqi Zhao, Zhiliang Wu, Chaochen Xu, Zehua Wang
article en

Abstract

Abstract While CO2 reduction reaction (CO2RR) coupled with chlorine evolution reaction (CER) can enhance the energy efficiency and economic viability of CO2 electrolysis, its implementation in zero-gap membrane-electrode-assembly (MEA) electrolysers remains challenging as CER-compatible systems require acidic chloride-rich anolytes and chlorine-tolerant cation exchange membranes that induce detrimental cation crossover. The resulting disruption of the cathodic microenvironment causes (bi)carbonate precipitation, hydrogen evolution, and operational instability. Here we report an asymmetric ion-regulation strategy using chloride-bearing, water-miscible poly(diallyldimethylammonium chloride) in the anolyte to maintain high chloride availability for CER while reducing K+ crossover and modifying proton transport through the membrane. Optimised MEA electrolysers achieve about 90% Faradaic efficiencies for both CO and Cl2 and more than 200 h of cumulative operation under replenishment/maintenance protocols, advancing CO2RR-CER beyond laboratory flow-cell demonstrations toward zero-gap MEA operation. Techno-economic and life-cycle analyses indicate that Cl2 co-production can improve process economics under the stated assumptions and reduce the greenhouse-gas intensity of CO production by 75% relative to conventional CO2RR coupled with oxygen evolution benchmarks.

ACS Energy Letters
The University of Western Australia (AU), Curtin University (AU), University of Newcastle Australia (AU), Newcastle University (GB), Woodside (Australia) (AU)
Openalex Percentile: Top 32%
CO2 Reduction Techniques and Catalysts
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