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April 10, 2026Energy & Fuels5 citations

Facile Synthesis of Cu-Doped In 2 S 3 Microflower Catalyst for Electrochemical CO 2 Reduction to Energy Fuels in a Wide Potential Range

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GBGuruprasad BhattacharyaIndian Institute of Technology KharagpurRMRadhapada MannaIndian Institute of Technology KharagpurPSPuspendu SardarIndian Institute of Technology Kharagpur

Key Points

  • This research focuses on enhancing the electrochemical reduction of CO2 to valuable products using Cu-doped In2S3.
  • Synthesis of 5% Cu doped In2S3 microflower catalyst
  • Electrocatalytic tests performed in an H-cell reactor
  • Evaluation of Faradaic Efficiency and current density
  • Long-term stability assessment through chronoamperometry
  • Computational studies using density functional theory (DFT)
  • The 5% Cu doped In2S3 achieved 34% Faradaic Efficiency for methanol and 36% for formate at −1.331 V vs RHE.
  • Partial current densities noted at −11.96 mA/cm2 for methanol and −10.83 mA/cm2 for formate.
  • The electrocatalyst showed remarkable stability during a 50-hour chronoamperometry test.
  • Density functional theory revealed insights into the catalytic properties of the doped material.

Abstract

Enhancing the activity of electroreduction of CO2 to valuable products and suppressing the hydrogen evolution reaction in aqueous solution are the major challenges nowadays for researchers. Indium-based materials demonstrate excellent catalytic behavior toward CO2 electroreduction, and incorporation of the Cu element into In2S3 brings better catalytic properties, provides enhanced electrochemical surface area, and provides higher charge transfer ability compared to the pristine material. Electrocatalytic techniques of the Cu doped In2S3 were performed in an H-cell reactor, and the most efficient electrocatalyst was identified for the CO2 reduction study. The electrocatalyst, 5% Cu doped In2S3, can reduce CO2 to methanol and formate with 34 and 36% Faradaic Efficiency (%FE), respectively, at −1.331 V vs RHE, and the corresponding partial current density values are −11.96 and −10.83 mA/cm2. The remarkable stability of the electrocatalyst during a 50 h of long-term chronoamperometry test further illustrates the excellent efficiency of the electrocatalyst. Density functional theory (DFT) based computational studies were employed to calculate the Density of States (DOS) of pristine In2S3 and 5% Cu doped In2S3 catalysts, as well as the free energies of intermediate product species for the generation of different carbon-based products.

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Cite This Study

Bhattacharya et al. (2026) studied this question.

synapsesocial.com/papers/69d8930e6c1944d70ce04285https://doi.org/10.1021/acs.energyfuels.5c06638
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