催化作用
镍
材料科学
铜
纳米颗粒
制作
金属
吸附
化学工程
乙炔
化学
纳米技术
化学物理
冶金
物理化学
有机化学
替代医学
病理
工程类
医学
作者
Jian Gu,Minzhen Jian,Li Huang,Zhihu Sun,Aowen Li,Yang Pan,Jiuzhong Yang,Wu Wen,Wu Zhou,Yue Lin,Huijuan Wang,Xinyu Liu,Leilei Wang,Xianxian Shi,Xiaohui Huang,Lina Cao,Si Chen,Xusheng Zheng,Haibin Pan,Junfa Zhu,Shiqiang Wei,Wei‐Xue Li,Junling Lu
标识
DOI:10.1038/s41565-021-00951-y
摘要
Atomically dispersed metal catalysts maximize atom efficiency and display unique catalytic properties compared with regular metal nanoparticles. However, achieving high reactivity while preserving high stability at appreciable loadings remains challenging. Here we solve the challenge by synergizing metal-support interactions and spatial confinement, which enables the fabrication of highly loaded atomic nickel (3.1 wt%) along with dense atomic copper grippers (8.1 wt%) on a graphitic carbon nitride support. For the semi-hydrogenation of acetylene in excess ethylene, the fabricated catalyst shows extraordinary catalytic performance in terms of activity, selectivity and stability-far superior to supported atomic nickel alone in the absence of a synergizing effect. Comprehensive characterization and theoretical calculations reveal that the active nickel site confined in two stable hydroxylated copper grippers dynamically changes by breaking the interfacial nickel-support bonds on reactant adsorption and making these bonds on product desorption. Such a dynamic effect confers high catalytic performance, providing an avenue to rationally design efficient, stable and highly loaded, yet atomically dispersed, catalysts.
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