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用氯化物调整铜表面的小平面分布。

Tailoring the facet distribution on copper with chloride.

作者信息

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

机构信息

Department of Chemistry, Center for High Entropy Catalysis (CHEAC), University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark

Department of Physics, Surface Physics and Catalysis, Technical University of Denmark Fysikvej DK-2800 Lyngby Denmark.

出版信息

Chem Sci. 2023 Dec 21;15(5):1714-1725. doi: 10.1039/d3sc05988j. eCollection 2024 Jan 31.

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 (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.

摘要

电催化反应对催化剂表面结构敏感。因此,找到确定具有不同几何形状的活性表面位点的方法对于解决结构-电催化性能关系至关重要。在这项工作中,我们提出了一种简单的方法来调节和量化铜催化剂上的表面结构。我们通过在富含氯化物的水溶液中对表面进行电化学氧化和还原,来调整铜晶面上的分布和比例。然后,我们通过伏安法铅(Pb)欠电位沉积(UPD)来研究新晶面的形成。我们首先记录不同单晶面上的伏安法铅UPD,其在不同电位值处有强烈的峰。我们使用这些数据来解耦定制的多晶面铜表面的铅(Pb)UPD曲线中的每个晶面峰贡献,并确定活性位点的几何形状。我们将实验与密度泛函理论(DFT)计算相结合,以评估表面氧化/电沉积处理过程中氯离子对铜晶面分布的配体效应。我们的实验和伍尔夫构造表明,氯离子优先吸附在(310)晶面上,减少了(111)位点的数量,并诱导了(310)或(100)×(110)畴的生长。我们的工作提供了一种将活性位点与铜几何形状相关联的工具,这是评估电催化中结构-性能关系所必需的。我们还展示了一种选择性定制铜晶面分布的简便方法,这对于设计明确的纳米结构催化剂至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66cc/10829013/d4c8f1a2e962/d3sc05988j-f1.jpg

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