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Atomically Dispersed Pd Promotes Water Activation and Electrochemical CO2 Reduction to Formate on Bismuth Catalysts

  • Wenjing Tian
  • , Fei Fan
  • , Hui Zi Huang
  • , Min Zhang
  • , An Xiang Yin*
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Electrocatalytic CO2 reduction reaction (CO2RR) offers a sustainable route for converting CO2 into value-added chemicals, but its efficiency is limited by sluggish kinetics and poor selectivity. Herein, we report the controlled synthesis of atomically dispersed Pd-modified Bi nanosheets (Pd2.5%–Bi NSs) via a solvent-guided solvothermal method followed by in situ electroreduction. Solvent engineering regulates the morphology of Bi2O3 precursors, resulting in Bi NSs with a high electrochemically active surface area. The incorporation of Pd optimizes the electronic structure, enhances the adsorption of the *OCHO intermediate, and lowers the energy barrier for CO2RR. Notably, atomically dispersed Pd sites facilitate H2O dissociation to provide sufficient active hydrogen, thereby accelerating the protonation kinetics in CO2RR. As a result, Pd2.5%–Bi NSs deliver a current density of 287 mA cm−2 at −1.0 V versus the reversible hydrogen electrode, while maintaining a high formate Faradaic efficiency (FEformate, >91.0%) over a wide current density range of 50–300 mA cm−2, with a maximum FEformate of 95.7% at 200 mA cm−2 in an alkaline flow cell. These results highlight the synergistic effects of moderate morphological control and atomic-level Pd incorporation, providing insights for the rational design of efficient CO2RR catalysts toward selective formate production.

Original languageEnglish
JournalChemistry - A European Journal
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

Keywords

  • Pd-modified Bi nanosheets
  • electrochemical CO reduction
  • flow cell
  • in situ electroreduction
  • solvent-guided synthesis

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