Issue 29, 2024

Electronic structure modification of SnO2 to accelerate CO2 reduction towards formate

Abstract

A systematic theoretical study probing the catalytic potential of metal-doped SnO2(110) was conducted. The incorporation of metals such as Zr, Ti, W, V, Hf, and Ge is shown to drive electron transfer to Sn. The increased charge of Sn is injected into anti-bonding orbitals, finely tuning the catalytic activity and reducing the overpotential to −0.34 V. AIMD simulations show the stability of the modified structures. This work sheds light on the rational design of low-cost metal oxides with a high catalytic performance for CO2ER to formate.

Graphical abstract: Electronic structure modification of SnO2 to accelerate CO2 reduction towards formate

Supplementary files

Article information

Article type
Communication
Submitted
31 Dec 2023
Accepted
22 Feb 2024
First published
23 Feb 2024

Chem. Commun., 2024,60, 3922-3925

Electronic structure modification of SnO2 to accelerate CO2 reduction towards formate

L. Li, S. Wu, D. Cheng, Z. Zhao and J. Gong, Chem. Commun., 2024, 60, 3922 DOI: 10.1039/D3CC06337B

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