Tailoring the Electronic Metal‐Support Interactions in Supported Silver Catalysts through Al modification for Efficient Ethylene Epoxidation

Author:

Yang Hongling12,Li Ganggang1,Liu Qinggang3,Cheng Haixia4,Wang Xiaoxu5,Cheng Jie1,Jiang Guoxia1,Zhang Fenglian1,Zhang Zhongshen1,Hao Zhengping1ORCID

Affiliation:

1. National Engineering Laboratory for VOCs Pollution Control Material & Technology, Research Center for Environmental Material and Pollution Control Technology University of the Chinese Academy of Sciences Beijing 101408 China

2. Beijing Key Laboratory for VOCs Pollution Prevention and Treatment Technology and Application of Urban Air Beijing Municipal Research Institute of Eco-Environmental Protection Beijing 100037 China

3. Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

4. Material Digital R&D Center China Iron & Steel Research Institute Group Beijing 100081 China

5. DP Technology Beijing 100080 China

Abstract

AbstractMetal‐modified catalysts have attracted extraordinary research attention in heterogeneous catalysis due to their enhanced geometric and electronic structures and outstanding catalytic performances. Silver (Ag) possesses necessary active sites for ethylene epoxidation, but the catalyst activity is usually sacrificed to obtain high selectivity towards ethylene oxide (EO). Herein, we report that using Al can help in tailoring the unoccupied 3d state of Ag on the MnO2 support through strong electronic metal‐support interactions (EMSIs), overcoming the activity‐selectivity trade‐off for ethylene epoxidation and resulting in a very high ethylene conversion rate (~100 %) with 90 % selectivity for EO under mild conditions (170 °C and atmospheric pressure). Structural characterization and theoretical calculations revealed that the EMSIs obtained by the Al modification tailor the unoccupied 3d state of Ag, modulating the adsorption of ethylene (C2H4) and oxygen (O2) and facilitating EO desorption, resulting in high C2H4 conversion. Meanwhile, the increased number of positively charge Ag+ lowers the energy barrier for C2H4(ads) oxidation to produce oxametallacycle (OMC), inducing the unexpectedly high EO selectivity. Such an extraordinary electronic promotion provides new promising pathways for designing advanced metal catalysts with high activity and selectivity in selective oxidation reactions.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for Central Universities of the Central South University

Publisher

Wiley

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