双功能
空位缺陷
催化作用
材料科学
水溶液
化学工程
甲醛
相(物质)
结晶学
化学物理
物理化学
化学
有机化学
工程类
作者
Kaicheng Qian,Yong Yan,Shibo Xi,Tong Wei,Yihu Dai,Xiaoqing Yan,Hisayoshi Kobayashi,Sheng Wang,Wen Liu,Renhong Li
出处
期刊:Small
[Wiley]
日期:2021-10-11
卷期号:17 (51)
被引量:44
标识
DOI:10.1002/smll.202102970
摘要
Lattice strain modulation and vacancy engineering are both effective approaches to control the catalytic properties of heterogeneous catalysts. Here, Co@CoO heterointerface catalysts are prepared via the controlled reduction of CoO nanosheets. The experimental quantifications of lattice strain and oxygen vacancy concentration on CoO, as well as the charge transfer across the Co-CoO interface are all linearly correlated to the catalytic activity toward the aqueous phase reforming of formaldehyde to produce hydrogen. Mechanistic investigations by spectroscopic measurements and density functional theory calculations elucidate the bifunctional nature of the oxygen-vacancy-rich Co-CoO interfaces, where the Co and the CoO sites are responsible for CH bond cleavage and OH activation, respectively. Optimal catalytic activity is achieved by the sample reduced at 350 °C, Co@CoO-350 which exhibits the maximum concentration of Co-CoO interfaces, the maximum concentration of oxygen vacancies, a lattice strain of 5.2% in CoO, and the highest aqueous phase formaldehyde reforming turnover frequency of 50.4 h-1 at room temperature. This work provides not only new insights into the strain-vacancy-activity relationship at bifunctional catalytic interfaces, but also a facile synthetic approach to prepare heterostructures with highly tunable catalytic activities.
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