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Updated: Jun 6, 2026

Solar-Driven Electrochemical Green Fuel Production from CO2 and Water Using Ti3C2Tx MXene-Supported CuZn and NiCo Catalysts
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Mercaptoimidazole-Engineered Microenvironment Enables Durable CO2 Electroreduction in a Zero-Gap PEM Electrolyzer.

Jia Chen Wu1, Tingting Yu2,3, Jianming Gu1

  • 1School of Materials Science and Engineering, Key Laboratory for Ultrafine Materials of Ministry of Education, East China University of Science and Technology, Shanghai, China.

Advanced Materials (Deerfield Beach, Fla.)
|June 5, 2026
PubMed
Summary

Researchers developed a novel catalyst for carbon dioxide (CO2) conversion in proton exchange membrane (PEM) electrolyzers. This breakthrough suppresses unwanted reactions and salt buildup, enabling efficient and stable CO2 reduction.

Keywords:
acid CO2 electroreductionformateligand modificationlocal microenvironmentproton exchange membrane electrolyzer

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Area of Science:

  • Electrochemistry
  • Catalysis
  • Materials Science

Background:

  • Proton exchange membrane (PEM) electrolysis offers sustainable CO2 conversion but struggles with balancing hydrogen evolution suppression and salt precipitation.
  • Existing catalysts face challenges in maintaining high selectivity and stability under demanding operating conditions.

Purpose of the Study:

  • To resolve the trade-off in CO2 conversion electrolysis by developing a catalyst that prevents carbonate formation while suppressing side reactions.
  • To engineer a catalyst with a tailored microenvironment for enhanced CO2 reduction performance in PEM electrolyzers.

Main Methods:

  • Molecular-level engineering of a lead-based catalyst by anchoring a mercaptoimidazole ligand.
  • Utilizing operando spectroscopic analyses and theoretical studies to understand catalyst surface phenomena.
  • Integrating the engineered catalyst into a zero-gap PEM electrolyzer for performance evaluation.

Main Results:

  • The mercaptoimidazole ligand created an alkaline microenvironment and proton-shielding effect at the catalyst surface.
  • Achieved a peak formate Faradaic efficiency of 95.8% and sustained >90% selectivity at 600 mA cm⁻².
  • Demonstrated stable operation (>300 h) under acidic (pH 1.0) and cation-starved conditions.

Conclusions:

  • The developed catalyst design decouples the catalytic microenvironment from the bulk electrolyte, overcoming previous limitations.
  • This strategy enables durable and highly selective acidic CO2 electrolysis, paving the way for efficient chemical production.
  • The findings provide a new design principle for advanced electrochemical CO2 conversion systems.