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May 15, 2026Angewandte Chemie0 citations

Unassisted Electrocatalytic Hydrogenation Coupled With Aldehydes Oxidation on Bifunctional Pd–Cu Synergistic Sites

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ZQZeyu QiaoFWFanyu WangYZYuqi Zhang

Key Points

  • This research aims to enhance energy efficiency in paired electrolysis by optimizing the design of bifunctional catalysts for hydrogenation and oxidation reactions.
  • Developed an electrochemical system utilizing Pd–Cu bifunctional sites for simultaneous reactions.
  • Conducted experimental studies alongside theoretical calculations to confirm the mechanism of hydrogen transfer and catalytic efficiency.
  • Focused on optimizing both anodic oxidation of aldehydes and cathodic hydrogenation reactions.
  • Demonstrated the ability to produce valuable chemicals without electrical energy input at both electrodes.
  • Showed the synergistic effect of Pd and Cu sites in enhancing hydrogen transfer kinetics, with specific roles for each metal in the reaction.
  • Achieved significant efficiency in paired electrolysis that can inform future electrochemical synthesis techniques.

Abstract

ABSTRACT Paired electrolysis enhances energy utilization efficiency by coupling anodic oxidation with cathodic reduction reactions, enabling the simultaneous production of high‐value chemicals. However, achieving the transition from electricity consumption to electricity generation in paired electrolysis remains a huge challenge due to mismatched potentials of anodic and cathodic reactions and lack of highly efficient active sites. Herein, we designed an electrochemical system that couples cathodic hydrogenation of various unsaturated compounds with anodic aldehydes oxidation reactions at a synergistic Pd–Cu bifunctional site. The paired hydrogenation and oxidation reactions were demonstrated to produce valuable products at both electrodes simultaneously without electrical energy input. Experimental studies and theory calculations indicate a Pd–Cu cooperative mechanism, which optimizes hydrogen transfer kinetics in both hydrogenation and oxidation reactions. Specifically, the Pd site promotes water dissociation to generate active hydrogen, which then spillover to the adjacent Cu site to catalyze hydrogenation, while the Pd site modulates the electronic structure of the Cu site, promoting C─H bond cleavage and facilitating H 2 generation during aldehydes oxidation. This study demonstrates that precise catalyst design and reaction system optimization can achieve efficient synergy between oxidation and reduction reactions in paired electrolysis, offering new insights and technological pathways for electrochemical synthesis of high‐value chemicals.

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Cite This Study

Qiao et al. (2026) studied this question.

synapsesocial.com/papers/6a06b81ce7dec685947aa9dehttps://doi.org/10.1002/ange.9988326
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