镍
甲醇
材料科学
电化学
配体(生物化学)
酒精氧化
分子
吸附
酒
化学工程
苯甲醇
金属
碳纳米管
催化作用
电催化剂
纳米技术
化学
有机化学
电极
物理化学
冶金
工程类
受体
生物化学
作者
Zhifu Liang,Daochuan Jiang,Xiang Wang,Mohsen Shakouri,Ting Zhang,Zhongjun Li,Pengyi Tang,Jordi Llorca,Lijia Liu,Yupeng Yuan,Marc Heggen,Rafal E. Dunin‐Borkowski,J.R. Morante,Andreu Cabot,Jordi Arbiol
标识
DOI:10.1002/adfm.202106349
摘要
Abstract Atomically dispersed metals maximize the number of catalytic sites and enhance their activity. However, their challenging synthesis and characterization strongly complicates their optimization. Here, the aim is to demonstrate that tuning the electronic environment of atomically dispersed metal catalysts through the modification of their edge coordination is an effective strategy to maximize their performance. This article focuses on optimizing nickel‐based electrocatalysts toward alcohol electrooxidation in alkaline solution. A new organic framework with atomically dispersed nickel is first developed. The coordination environment of nickel within this framework is modified through the addition of carbonyl (CO) groups. The authors then demonstrate that such nickel‐based organic frameworks, combined with carbon nanotubes, exhibit outstanding catalytic activity and durability toward the oxidation of methanol (CH 3 OH), ethanol (CH 3 CH 2 OH), and benzyl alcohol (C 6 H 5 CH 2 OH); the smaller molecule exhibits higher catalytic performance. These outstanding electrocatalytic activities for alcohol electrooxidation are attributed to the presence of the carbonyl group in the ligand chemical environment, which enhances the adsorption for alcohol, as revealed by density functional theory calculations. The work not only introduces a new atomically dispersed Ni‐based catalyst, but also demonstrates a new strategy for designing and engineering high‐performance catalysts through the tuning of their chemical environment.
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