堆积
化学
纳米材料基催化剂
催化作用
纳米颗粒
叠加断层
镍
金属
纳米技术
化学工程
有机化学
材料科学
工程类
作者
Zeno Rizqi Ramadhan,Agus R. Poerwoprajitno,Soshan Cheong,Richard F. Webster,Priyank V. Kumar,Steffen Cychy,Lucy Gloag,Tânia M. Benedetti,Christopher E. Marjo,Martin Muhler,Dawei Wang,J. Justin Gooding,Wolfgang Schuhmann,Richard D. Tilley
摘要
Creating high surface area nanocatalysts that contain stacking faults is a promising strategy to improve catalytic activity. Stacking faults can tune the reactivity of the active sites, leading to improved catalytic performance. The formation of branched metal nanoparticles with control of the stacking fault density is synthetically challenging. In this work, we demonstrate that varying the branch width by altering the size of the seed that the branch grows off is an effective method to precisely tune the stacking fault density in branched Ni nanoparticles. A high density of stacking faults across the Ni branches was found to lower the energy barrier for Ni2+/Ni3+ oxidation and result in enhanced activity for electrocatalytic oxidation of 5-hydroxylmethylfurfural. These results show the ability to synthetically control the stacking fault density in branched nanoparticles as a basis for enhanced catalytic activity.
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