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May 15, 2026Science Advances1 citationsOpen Access

Acidic-alkaline tandem system for durable CO 2 -CO-C 2+

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XMXianhui MaJZJuan ZhangDHDayin He

Key Points

  • The research aims to develop a durable tandem system for the effective conversion of carbon dioxide to multicarbon products.
  • Designed an acidic-alkaline tandem system for CO2 reduction to C2+ products.
  • Used a catalyst with precise metal site control for enhanced COOH adsorption.
  • Evaluated carbon monoxide Faradaic efficiency and product yield under varying current densities.
  • Achieved 99.7 ± 0.4% CO Faradaic efficiency at 1.4 A/cm² using a 0.5-nm nickel catalyst.
  • Reached 75.3 ± 1.2% ethylene Faradaic efficiency and 92.5 ± 1.3% C2+ efficiency at 10 A over 400 hours, indicating stability.

Abstract

Tandem carbon dioxide reduction reaction (CO 2 RR) to multicarbon products (CO 2 -CO-C 2+ ) such as ethylene represents a pivotal strategy for carbon valorization. However, conventional alkaline or neutral tandem systems limit the carbon dioxide utilization and stability due to severe (bi)carbonate formation. Here, we design a durable acidic-alkaline tandem system to efficiently synthesize C 2+ products, especially ethylene. In the acidic CO 2 RR step, a catalyst with precisely controlled metal site distance was used to regulate *COOH adsorption. Typically, a 99.7 ± 0.4% carbon monoxide Faradaic efficiency (FE) at 1.4 amperes per square centimeter can be achieved using a catalyst with 0.5-nanometer nickel sites, surpassing the previously reported metal catalysts. When this catalyst was integrated into the acidic-alkaline tandem system and coupled with the alkaline carbon monoxide electroreduction, the ethylene and C 2+ FE reached 75.3 ± 1.2 and 92.5 ± 1.3% at 10 amperes, respectively, and remained stable for 400 hours. Our work provides solutions for the durable conversion of carbon dioxide to C 2+ products from catalyst and electrolyzer design.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/6a06b928e7dec685947abc11https://doi.org/10.1126/sciadv.aea2538
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