催化作用
纳米颗粒
配体(生物化学)
结合能
合金
金属
化学物理
化学工程
表面工程
应变工程
过渡金属
化学
材料科学
纳米技术
冶金
有机化学
生物化学
工程类
物理
受体
核物理学
硅
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2024-10-23
卷期号:14 (21): 16383-16391
被引量:5
标识
DOI:10.1021/acscatal.4c03857
摘要
Binding energy of reactants on heterogeneous catalyst surface sites is a well-established catalytic activity descriptor for many chemical reactions. However, systematically manipulating the binding energies by engineering the catalytic surface sites has proven challenging. Herein, we propose a nanoparticle catalyst structure that contains an alloy core composed of miscible metal atoms, surrounded by layers of a different material, and covered by a layer of catalytically active metal. The alloy core controls the lattice strain of the nanoparticle and therefore the distance between the surface atoms, while the subsurface layer atoms induce a ligand effect on the surface atoms. We show that this class of materials allows us to systematically control the adsorbate binding energies with high precision. We illustrate our findings by developing nonmodel nanoparticle catalysts that employ an AuCu alloy with controlled composition as the core, Au as the surrounding layers, and Pt as the active surface metal. Electrochemical CO stripping measurements suggest that the CO binding energy on the surface Pt sites can be systematically tuned by varying the composition of the alloy core. Our analysis suggests that the change in the CO binding energy of Pt is the result of the combined ligand effect from the Au layers and strain effect from the AuCu core. The presented catalyst structure allows for precise modulation of the strain and ligand effect for tuning the local chemical environment of any catalytic materials, which may aid the development of next-generation catalysts.
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