Applied Catalysis2022,Vol.30613.DOI:10.1016/j.apcatb.2022.121140

Hollow carbon sphere encapsulated nickel nanoreactor for aqueous-phase hydrogenation-rearrangement tandem reaction with enhanced catalytic performance

Zhao H. Wang G. Han M. Hu Z. Chen C. Zou Z. Shen Y. Fu Z. Zhu X. Zhang Y. Zhang H.
Applied Catalysis2022,Vol.30613.DOI:10.1016/j.apcatb.2022.121140

Hollow carbon sphere encapsulated nickel nanoreactor for aqueous-phase hydrogenation-rearrangement tandem reaction with enhanced catalytic performance

Zhao H. 1Wang G. 1Han M. 2Hu Z. 1Chen C. 1Zou Z. 1Shen Y. 1Fu Z. 1Zhu X. 1Zhang Y. 1Zhang H.1
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作者信息

  • 1. Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences
  • 2. School of Science Huzhou University
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Abstract

? 2022 Elsevier B.V.As green chemistry, aqueous-phase reactions play a vital role in modern fine chemical synthesis. Herein, an encapsulated nickel in a hollow carbon sphere (Ni@HCS) catalyst was constructed to effectively catalyze an aqueous-phase hydrogenation-rearrangement tandem (AP-HRT) reaction, in which water was employed as the solvent and reactant simultaneously. The activity is relevant to the HCS and Ni loading. The optimal Ni@HCS catalyst can release 100% furfural conversion and 99.1% cyclopentanone selectivity at 150 °C and can maintain its activity after 10 cycles of experiments. The superior catalytic performance comes from the fact that each independent Ni@HCS can be treated as an individual nanoreactor with a void-confinement effect, which not only reduces the side reactions due to the size-selective effect but also prevents active metal from leaching under harsh conditions. The reaction mechanism of FAL AP-HRT was further investigated via kinetic experiments combined with DFT calculations.

Key words

Aqueous phase/Nanoreactor/Tandem reaction/Void-confinement effect

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量18
参考文献量32
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