Identical Grain Atomic Force Microscopy Elucidates Facet-dependent Restructuring of Copper for CO2 Electroreduction

Publication date

2025-04-11

Authors

Wang, Hui
Mandemaker, LaurensORCID 0000-0003-2630-7855ISNI 000000049261341X
de Ruiter, JimISNI 0000000506363301
Yu, Xuang
van der Stam, WardISNI 0000000443863316
Weckhuysen, B.M.ORCID 0000-0001-5245-1426ISNI 0000000110540180

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Document Type

Article
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cc_by

Abstract

Studies on the catalyst restructuring during the electrochemical CO2 reduction reaction (eCO2RR) are limited and mostly focused on Cu (001) or (111) single crystals as model systems. A comprehensive overview of the dynamic restructuring of different Cu facets is lacking. Here, we first reveal the facet-dependent restructuring of polycrystalline Cu electrodes through electron backscatter diffraction (EBSD) and identical grain atomic force microscopy (AFM). This combined analysis provides new insights into the evolution of crystal domains (EBSD) and surface topography (AFM) at varying conditions (e.g., applied potential and oxidative-reductive pulses). The statistic slope distribution function was applied to study the restructuring asymmetry on five Cu facets (i.e., planar vs. atom stepped). We find that planar Cu (001) shows a square-shaped morphology after eCO2RR with 4-fold asymmetry restructuring behavior, while triangular features dominate on Cu (111), evidenced by surface changes with 3-fold asymmetry. 2-fold restructuring is observed for Cu (114), (212), and (124) with atom steps, resulting in forming elongated structures. Therefore, the surface restructuring is dominated by the asymmetry of its facet lattice structure (i.e., planar vs. atom-stepped). This work underscores the potential of combining techniques to elucidate the relationship between surface restructuring and crystal facets on different length scales.

Keywords

Atomic force microscopy, CO electroreduction, Crystal facets, Electron backscatter diffraction, Surface restructuring, Catalysis, General Chemistry

Citation

Wang, H, Mandemaker, L, De Ruiter, J, Yu, X, van der Stam, W & Weckhuysen, B M 2025, 'Identical Grain Atomic Force Microscopy Elucidates Facet-dependent Restructuring of Copper for CO2 Electroreduction', Angewandte Chemie-International Edition, vol. 64, no. 16, e202424530. https://doi.org/10.1002/anie.202424530