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Journal of the American Chemical Society· 2026Q1

Mechanistic Study of CO2 Reduction in a Metal Nanoparticle/Ligand-Based Nanoconfined Pocket

Asmita Jana, Maria Fonseca Guzman, Faezeh Habibzadeh, Chong Liu et al.

Short summary

Nanoconfinement of silver nanoparticles by ligands or other silver layers significantly enhances CO2 reduction selectivity over hydrogen evolution by stabilizing key reaction intermediates (*COOH over *H), with interfacial water further boosting this effect.

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Key points

  • Nanoconfinement of silver nanoparticles (Ag) by ligands or other Ag layers improves CO2 reduction selectivity.
  • Decreasing confinement distance from 7 Å to 4 Å stabilizes CO2RR intermediates over HER.
  • Interfacial water enhances the stabilization of *COOH intermediates over *H, particularly in Ag/ligand systems.
  • Nanoconfinement is an effective strategy for controlling reactivity at gas-liquid-solid interfaces for CO2 reduction.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Electrochemically reducing CO2 holds promise for producing value-added chemicals. Achieving this requires electrocatalysts with high selectivity and energy efficiency. Nanopocket engineering enhances catalytic activity by modulating interfacial reactivity and stabilizing key intermediates, especially those involved in the rate-determining step. Here, we use density functional theory to systematically evaluate the CO2 reduction reaction (CO2RR) and the competing hydrogen evolution reaction (HER) on three systems: Ag surface without confinement, double Ag confinement, and Ag surface confined by a ligand in the absence and presence of interfacial water. We find that decreasing the confinement distance from 7 to 4 Å stabilizes CO2RR intermediates over HER in the double Ag and Ag/ligand systems, due to additional secondary interactions, such as hydrogen bonding, in the latter. The hydrogen bonding network is further enhanced in the presence of interfacial water, resulting in increased *COOH stabilization over *H in Ag/ligand and double Ag systems at a 7 Å confinement distance. The increased stabilization of *COOH over *H can be attributed to the high selectivity and activity for CO2RR in Ag/ligand catalysts. These results systematically reveal how nanoconfinement can be an effective strategy for controlling reactivity at the gas–liquid–solid interfaces toward highly selective CO2RR.

The authors' abstract, as published at the source. Journal of the American Chemical Society, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy