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Tailoring the facet distribution on copper with chloride.
Couce, Pedro Mazaira; Madsen, Thor Kongstad; Plaza-Mayoral, Elena; Kristoffersen, Henrik H; Chorkendorff, Ib; Dalby, Kim Nicole; van der Stam, Ward; Rossmeisl, Jan; Escudero-Escribano, María; Sebastián-Pascual, Paula.
Affiliation
  • Couce PM; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Madsen TK; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Plaza-Mayoral E; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Kristoffersen HH; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Chorkendorff I; Department of Physics, Surface Physics and Catalysis, Technical University of Denmark Fysikvej DK-2800 Lyngby Denmark.
  • Dalby KN; Topsoe A/S Haldor Topsøes Allé 1 DK-2800 Kgs. Lyngby Denmark.
  • van der Stam W; Utrecht University, Inorganic Chemistry and Catalysis, Debye Institute for Nanomaterials Science Netherlands.
  • Rossmeisl J; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Escudero-Escribano M; Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark paula.pascual@chem.ku.dk hhk@chem.ku.dk.
  • Sebastián-Pascual P; Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC, Barcelona Institute of Science and Technology UAB Campus, 08193 Bellaterra Barcelona Spain maria.escudero@icn2.cat.
Chem Sci ; 15(5): 1714-1725, 2024 Jan 31.
Article in En | MEDLINE | ID: mdl-38303937
ABSTRACT
Electrocatalytic reactions are sensitive to the catalyst surface structure. Therefore, finding methods to determine active surface sites with different geometry is essential to address the structure-electrocatalytic performance relationships. In this work, we propose a simple methodology to tune and quantify the surface structure on copper catalysts. We tailor the distribution and ratio of facets on copper by electrochemically oxidizing and reducing the surface in chloride-rich aqueous solutions. We then address the formation of new facets with voltammetric lead (Pb) underpotential deposition (UPD). We first record the voltammetric lead UPD on different single facets, which have intense peaks at different potential values. We use this data to decouple each facet peak-contribution in the lead (Pb) UPD curves of the tailored and multifaceted copper surfaces and determine the geometry of the active sites. We combine experiments with density functional theory (DFT) calculations to assess the ligand effect of chloride anions on the copper facet distribution during the surface oxidation/electrodeposition treatment. Our experiments and Wulff constructions suggest that chloride preferentially adsorbs on the (310) facet, reducing the number of (111) sites and inducing the growth of (310) or n(100) × (110) domains. Our work provides a tool to correlate active sites with copper geometries, which is needed to assess the structure-performance relationships in electrocatalysis. We also demonstrate an easy method for selectively tailoring the facet distribution of copper, which is essential to design a well-defined nanostructured catalyst.