Low-cost and highly stable Ni@NC materials synthesized from metal-organic framework precursors for selectively catalytic hydrogenation of p-nitrophenol under mild conditions

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作者
Gong, Yuxiu [1 ]
Zhao, Bei [1 ,3 ]
Wang, Ning [1 ]
Jiang, Shuaihua [1 ]
Yu, Haibin [1 ]
Liang, Peng [1 ]
Jiao, Tiantian [1 ]
Xu, Bu [1 ]
Fan, Xing [1 ,2 ]
Zhao, Guoming [1 ,4 ]
机构
[1] Key Laboratory of Low Carbon Energy and Chemical Engineering, College of Chemical and Biological Engineering, Shandong University of Science and Technology, Qingdao,266590, China
[2] Key Laboratory of Chemistry and Chemical Engineering on Heavy Carbon Resources of Yili Kazakh Autonomous Prefecture, Yili Normal University, Xinjiang, Yining,835000, China
[3] Zhejiang Yuanjin Chemica Co, Ltd., Jingxin Building, No. 111 Lijiang Road, Zhejiang Province, Xinchang County,312500, China
[4] Key Laboratory of Resources Green Conversion and Utilization of the State Ethnic Affairs Commission & Ministry of Education, South-Central University for Nationalities, Wuhan,430074, China
基金
中国国家自然科学基金;
关键词
Carbon - Catalyst selectivity - Costs - Crystalline materials - Doping (additives) - Hydrogenation - Nanoparticles - Nitrogen - Organometallics - Phenols;
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摘要
The catalytic hydrogenation of aromatic nitro compounds under mild conditions to generate amino compounds is a great challenge in terms of conversion, selectivity and stability. In this paper, two classes of nitrogen-doped carbon coated nickel nanoparticles, coined Ni@NC-P and displaced Ni@NC-T were prepared by high-temperature pyrolysis of MOFs using inexpensive terephthalic acid and high-priced trimesic acid as carbon source, respectively. One from the former class, namely the Ni@NC-P-500 catalyst, exhibits the best catalytic performance, which is superior to Ni@NC-T-500 Samples. For the selective hydrogenation of p-nitrophenol under mild conditions (60 °C, 2 h), the Ni@NC-P-500 catalyst shows >99.9 % conversion of p-nitrophenol and >99.9 % selectivity for p-aminophenol and can be recycled five times without obvious decrease of conversion and selectivity, thanks to its larger specific surface area (382.02 m2·g−1), smaller nickel particle size (8.2 nm), higher nitrogen content (especially pyridine nitrogen), higher electron-rich nickel content and less hydrophilic properties than that of the Ni@NC-T-500. The excellent stability and recyclability of the catalysts are mainly attributed to their core–shell structure, i.e., zero-valent nickel nanoparticles encapsulated within a nitrogen-doped carbon layer with an appropriate microporous structure, whereas zero-valent nickel nanoparticles have the ability to activate dihydrogen and block dioxygen. © 2024 Elsevier Ltd
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    Gong, Yuxiu
    Zhao, Bei
    Wang, Ning
    Jiang, Shuaihua
    Yu, Haibin
    Liang, Peng
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    Xu, Bu
    Fan, Xing
    Zhao, Guoming
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