乙炔
金属
氢化物
材料科学
纳米颗粒
催化作用
纳米技术
化学工程
选择性
多孔性
壳体(结构)
氢
化学物理
化学
有机化学
复合材料
冶金
工程类
作者
Peiwen Wu,Shuai Tan,Jisue Moon,Zihao Yan,Victor Fung,Na Li,Shize Yang,Yongqiang Cheng,Carter W. Abney,Zili Wu,Aditya Savara,Ayyoub M. Momen,De‐en Jiang,Dong Su,Huaming Li,Wenshuai Zhu,Sheng Dai,Huiyuan Zhu
标识
DOI:10.1038/s41467-020-16674-y
摘要
Abstract Engineering strong metal–support interactions (SMSI) is an effective strategy for tuning structures and performances of supported metal catalysts but induces poor exposure of active sites. Here, we demonstrate a strong metal–support interaction via a reverse route (SMSIR) by starting from the final morphology of SMSI (fully-encapsulated core–shell structure) to obtain the intermediate state with desirable exposure of metal sites. Using core–shell nanoparticles (NPs) as a building block, the Pd–FeO x NPs are transformed into a porous yolk–shell structure along with the formation of SMSIR upon treatment under a reductive atmosphere. The final structure, denoted as Pd–Fe 3 O 4 –H, exhibits excellent catalytic performance in semi-hydrogenation of acetylene with 100% conversion and 85.1% selectivity to ethylene at 80 °C. Detailed electron microscopic and spectroscopic experiments coupled with computational modeling demonstrate that the compelling performance stems from the SMSIR, favoring the formation of surface hydrogen on Pd instead of hydride.
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