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Atomically Dispersed Indium Sites for Selective CO2 Electroreduction to Formic Acid.

Peilong Lu1,2, Xin Tan3, Haitao Zhao4

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Atomically dispersed indium (In) on nitrogen-doped carbon efficiently converts carbon dioxide (CO2) to formate. This single-atom catalyst exhibits high activity and selectivity, surpassing traditional indium catalysts for CO2 electroreduction.

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Area of Science:

  • Electrochemistry
  • Materials Science
  • Catalysis

Background:

  • Atomically dispersed structures offer unique catalytic properties for CO2 electroconversion.
  • Current single-atom electrocatalysts primarily focus on CO2 to carbon monoxide (CO) conversion.
  • Developing catalysts for selective CO2 to formate production is crucial for sustainable chemistry.

Purpose of the Study:

  • To develop an efficient atomically dispersed catalyst for CO2 electroreduction to formic acid/formate.
  • To investigate the catalytic performance of indium on a nitrogen-doped carbon skeleton (In-N-C).
  • To elucidate the reaction mechanism and identify key intermediates for enhanced formate selectivity.

Main Methods:

  • Synthesis of atomically dispersed indium on a nitrogen-doped carbon skeleton (In-N-C).
  • Electrochemical characterization including cyclic voltammetry and chronoamperometry.
  • Density functional theory (DFT) calculations to study reaction pathways and energy barriers.

Main Results:

  • The In-N-C catalyst achieved a high turnover frequency of 26771 h⁻¹ for CO2 to formate conversion at -0.99 V vs RHE.
  • Electrocatalytic performance significantly improved with atomically dispersed In compared to metallic In.
  • DFT calculations confirmed that the *OCHO intermediate on isolated In sites facilitates the CO2-to-formate pathway with a lower energy barrier.

Conclusions:

  • Atomically dispersed indium on nitrogen-doped carbon is a highly effective catalyst for selective CO2 electroreduction to formate.
  • The isolated In sites and the *OCHO intermediate play a critical role in the enhanced catalytic efficiency.
  • This work provides insights into designing advanced single-atom catalysts for sustainable CO2 utilization.