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May 26, 2026Angewandte Chemie0 citations

Electronic State Coupling for Cu + Stabilization to Boost Highly Efficient Transformation of CO 2 to C2 Products

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XBXinze BiChina University of Petroleum, East ChinaYYYifan YanChina University of Petroleum, East ChinaHWH Z WangShandong Normal University

Key Points

  • This research aims to improve the efficiency of converting CO2 to C2 products using Cu-based nanomaterials.
  • Optimized Cu-based nanomaterials with integrated carbon quantum dots (CQDs) under pulsed electrolysis.
  • Evaluated Faradaic efficiency for C2 products with rigorous in situ spectroscopic characterizations and theoretical simulations.
  • Achieved monovalent Cu states to enhance performance during the electrolysis process.
  • Achieved a Faradaic efficiency of 85.3% for C2 products.
  • Maintained a Faradaic efficiency greater than 70% over a wide potential window of 1.6 V.
  • Demonstrated strong electronic state coupling that stabilizes Cu+ species for optimal catalyst performance.

Abstract

ABSTRACT Cu‐based nanomaterials are attracting great attention for the electroreduction of CO 2 to valuable C2 products. However, the optimization of physicochemical properties of Cu‐based active species, especially the electronic valence and orbital states, remains one of the greatest challenges in achieving desirable C2 products synthesis performance under harsh reductive electrolysis conditions. To tackle this obstacle, we propose a pulse‐enabled Cu valence‐state regulation strategy by integrating carbon quantum dots (CQDs). Under pulsed electrolysis, Cu 2‐x Se/CQDs delivers a Faradaic efficiency (FE) of up to 85.3% for C2 products and maintains FE C2 >70% over an ultra‐wide potential window of 1.6 V. Multiple in situ spectroscopic characterizations and theoretical simulations clarify that the strong electronic state coupling between Cu 2‐x Se and CQDs, together with pulsed electrolysis, maintains monovalent Cu species (Cu + ), guaranteeing the outstanding C2 products synthesis efficiency. This work presents an innovative and universal protocol to guide the rational design of catalysts requiring precise oxidation‐state control.

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Cite This Study

Bi et al. (2026) studied this question.

synapsesocial.com/papers/6a153bdfb5d9c58d83e8d49bhttps://doi.org/10.1002/ange.1066259
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