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Electrocatalytic CO 2 Reduction on CuO x Nanocubes: Tracking the Evolution of Chemical State, Geometric Structure, and Catalytic Selectivity using Operando Spectroscopy

The direct electrochemical conversion of carbon dioxide (CO 2 ) into multi‐carbon (C 2+ ) products still faces fundamental and technological challenges. While facet‐controlled and oxide‐derived Cu materials have been touted as promising catalysts, their stability has remained problematic and poorly...

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Published in:Angewandte Chemie 2020-10, Vol.132 (41), p.18130-18139
Main Authors: Möller, Tim, Scholten, Fabian, Thanh, Trung Ngo, Sinev, Ilya, Timoshenko, Janis, Wang, Xingli, Jovanov, Zarko, Gliech, Manuel, Roldan Cuenya, Beatriz, Varela, Ana Sofia, Strasser, Peter
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cited_by cdi_FETCH-LOGICAL-c846-4df3703872969fe862ea7d49ff870fb7e2e23e45d6b2c9b6b0e4a19619fd9c703
cites cdi_FETCH-LOGICAL-c846-4df3703872969fe862ea7d49ff870fb7e2e23e45d6b2c9b6b0e4a19619fd9c703
container_end_page 18139
container_issue 41
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container_title Angewandte Chemie
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creator Möller, Tim
Scholten, Fabian
Thanh, Trung Ngo
Sinev, Ilya
Timoshenko, Janis
Wang, Xingli
Jovanov, Zarko
Gliech, Manuel
Roldan Cuenya, Beatriz
Varela, Ana Sofia
Strasser, Peter
description The direct electrochemical conversion of carbon dioxide (CO 2 ) into multi‐carbon (C 2+ ) products still faces fundamental and technological challenges. While facet‐controlled and oxide‐derived Cu materials have been touted as promising catalysts, their stability has remained problematic and poorly understood. Herein we uncover changes in the chemical and morphological state of supported and unsupported Cu 2 O nanocubes during operation in low‐current H‐Cells and in high‐current gas diffusion electrodes (GDEs) using neutral pH buffer conditions. While unsupported nanocubes achieved a sustained C 2+ Faradaic efficiency of around 60 % for 40 h, the dispersion on a carbon support sharply shifted the selectivity pattern towards C 1 products. Operando XAS and time‐resolved electron microscopy revealed the degradation of the cubic shape and, in the presence of a carbon support, the formation of small Cu‐seeds during the surprisingly slow reduction of bulk Cu 2 O. The initially (100)‐rich facet structure has presumably no controlling role on the catalytic selectivity, whereas the oxide‐derived generation of under‐coordinated lattice defects, can support the high C 2+ product yields.
doi_str_mv 10.1002/ange.202007136
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title Electrocatalytic CO 2 Reduction on CuO x Nanocubes: Tracking the Evolution of Chemical State, Geometric Structure, and Catalytic Selectivity using Operando Spectroscopy
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