Cheng, Dongfang; Wei, Ziyang; Zhang, Zisheng; Broekmann, Peter; Alexandrova, Anastassia N; Sautet, Philippe (2023). Restructuring and Activation of Cu (111) under Electrocatalytic Reduction Conditions. Angewandte Chemie. International edition, 62(20), e202218575. Wiley 10.1002/anie.202218575
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Angew_Chem_Int_Ed_-_2023_-_Cheng_-_Restructuring_and_Activation_of_Cu_111_under_Electrocatalytic_Reduction_Conditions.pdf - Accepted Version Available under License Publisher holds Copyright. Download (2MB) | Preview |
The dynamic restructuring of Cu surfaces in electroreduction conditions is of fundamental interest in electrocatalysis. We decode the structural dynamics of a Cu(111) electrode under reduction conditions by joint first-principles calculations and operando electrochemical scanning tunneling microscopy (ECSTM) experiments. Combining global optimization and grand canonical density functional theory, we unravel the potential- and pH-dependent restructuring of Cu(111) in acidic electrolyte. At reductive potential, Cu(111) is covered by a high density of H atoms and, below a threshold potential, Cu adatoms are formed on the surface in a (4×4) superstructure, a restructuring unfavorable in vacuum. The strong H adsorption is the driving force for the restructuring, itself induced by electrode potential. On the restructured surface, barriers for hydrogen evolution reaction steps are low. Restructuring in electroreduction conditions creates highly active Cu adatom sites not present on Cu(111).
Item Type: |
Journal Article (Original Article) |
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Division/Institute: |
08 Faculty of Science > Department of Chemistry, Biochemistry and Pharmaceutical Sciences (DCBP) |
UniBE Contributor: |
Broekmann, Peter |
Subjects: |
500 Science > 570 Life sciences; biology 500 Science > 540 Chemistry |
ISSN: |
1521-3773 |
Publisher: |
Wiley |
Language: |
English |
Submitter: |
Pubmed Import |
Date Deposited: |
20 Mar 2023 08:11 |
Last Modified: |
17 Mar 2024 00:25 |
Publisher DOI: |
10.1002/anie.202218575 |
PubMed ID: |
36922903 |
Uncontrolled Keywords: |
Cu(111) Electrocatalysis density functional theory hydrogen evolution reaction operando electrochemical scanning tunneling microscopy |
BORIS DOI: |
10.48350/180273 |
URI: |
https://boris.unibe.ch/id/eprint/180273 |