Issue 19, 2025

Understanding the degradation of Ag2Cu2O3 electrocatalysts for CO2 reduction

Abstract

Recently, a mixed-metal oxide with a paramelaconite-type crystal structure (Ag2Cu2O3) has been investigated as a promising catalyst for electrochemical reduction of CO2 and CO. The catalyst operates with a reasonable overpotential and good selectivity. However, during its utilization, the catalyst experiences a degradation in conversion efficiency, thus limiting its potential in industrial application. This has so far been attributed to the unstable nature of the crystal structure, which tends to partition into metallic copper and silver. In this study, we characterized this decomposition using atom probe tomography and analytical electron microscopy. We found this decomposition to take place also under an electron beam without any ongoing reaction conditions. We also found that dissolution mechanisms must play a role in the degradation of the catalyst. This is deduced from the existence of nanostructures which only form during catalyst operation and are comprised of copper and potassium, the latter of which stems from the electrolyte. The composition of these nanostructures was confirmed using an atom probe.

Graphical abstract: Understanding the degradation of Ag2Cu2O3 electrocatalysts for CO2 reduction

Supplementary files

Article information

Article type
Paper
Submitted
07 Apr 2025
Accepted
21 Jul 2025
First published
14 Aug 2025
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2025,7, 6005-6016

Understanding the degradation of Ag2Cu2O3 electrocatalysts for CO2 reduction

N. Vorlaufer, J. Josten, A. Hutzler, C. A. Macauley, N. Martić, M. Weiser, G. Schmid, K. J. J. Mayrhofer and P. Felfer, Nanoscale Adv., 2025, 7, 6005 DOI: 10.1039/D5NA00328H

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