催化作用
材料科学
氧化物
化学工程
金属
电催化剂
纳米复合材料
纳米技术
无机化学
活动站点
纳米材料基催化剂
纳米颗粒
电化学
化学
物理化学
电极
有机化学
冶金
工程类
作者
Aiai Zhang,Jinfang Wu,Lei Xue,Caixia Li,Shanghong Zeng,Dominic Caracciolo,Shan Wang,Chuan‐Jian Zhong
标识
DOI:10.1021/acsami.1c11730
摘要
Understanding how the catalyst morphology influences surface sites is crucial for designing active and stable catalysts and electrocatalysts. We here report a new approach to this understanding by decorating gold (Au) nanoparticles on the surface of cuprous oxides (Cu2O) with three different shape morphologies (spheres, cubes, and petals). The Au-Cu2O particles are dispersed onto carbon nanotube (CNT) matrix with high surface area, stability, and conductivity for oxygen reduction reaction. A clear morphology-dependent enhancement of the electrocatalytic activity is revealed. Oxygenated gold species (AuO–) are found to coexist with Au0 on the cube and petal catalysts, whereas only Au0 species are present on the sphere catalyst. The AuO– species function effectively as active sites, resulting in the improved catalytic performance by changing the reaction mechanism. The enhanced catalytic performance of the petal-shaped catalyst in terms of onset potential, half-wave potential, diffusion-limited current density, and stability is closely associated with the presence of the most abundant AuO– species on its surface. Highly active AuO– species are identified on the surface of the catalysts as a result of the unique structural characteristics, which is attributed to the structural origin of high activity and stability. This insight constitutes the basis for assessing the detailed correlation between the morphology and the electrocatalytic properties of the nanocomposite catalysts, which has implications for the design of surface-active sites on metal/metal oxide electrocatalysts.
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