Protein-derived carbon-supported Ni–Mo bimetallic catalysts with dual-active interfaces for mild hydrogenation of nitroarenes

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Guangji Zhang, Xiaojun Zhao, Jiao Zou, Yuqiu Shen, Ming Lu, Yuhan Wang, Jinyu Yang and Guocong Liu
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Abstract

Nickel-based non-precious metal hydrogenation catalysts have attracted widespread attention due to their cost-effectiveness, but they still face challenges in practical applications, such as low hydrogenation activity, easy aggregation and deactivation of Ni nanoparticles, and harsh reaction conditions. To address these issues, this study proposes a synergistic strategy based on nitrogen-rich biomass precursors. By leveraging the chelating effect of proteins, NiCl2 and Na2MoO4 were co-assembled on the surface of porous carbon black, followed by pyrolysis under a nitrogen atmosphere, successfully preparing a carbon-supported Ni–MoC bimetallic catalyst with MoC–NiNx interfaces (Ni–MoC/NC–X). The nitrogen species derived from proteins not only facilitated the formation of a nitrogen-doped carbon (NC) support but also effectively suppressed the aggregation of Ni through N coordination. Furthermore, the synergistic effect between MoC and NiNx significantly enhanced the activity and stability of the nickel catalyst. Experimental results demonstrated that Ni–MoC/NC700 exhibited high conversion (>99%) and selectivity (>95%) for 16 aromatic nitro compounds with different substituents under mild conditions (90 °C, 5 bar H2).

Abstract Image

具有双活性界面的蛋白质源碳负载Ni-Mo双金属催化剂用于硝基芳烃的轻度加氢
镍基非贵金属加氢催化剂因其成本效益而受到广泛关注,但在实际应用中仍面临加氢活性低、Ni纳米颗粒容易聚集失活、反应条件苛刻等挑战。为了解决这些问题,本研究提出了一种基于富氮生物质前体的协同策略。利用蛋白质的螯合作用,将NiCl2和Na2MoO4共同组装在多孔炭黑表面,然后在氮气气氛下热解,成功制备了具有MoC-NiNx界面的碳负载Ni-MoC双金属催化剂(Ni-MoC / NC-X)。来源于蛋白质的氮不仅促进了氮掺杂碳(NC)载体的形成,而且通过N配位有效抑制了Ni的聚集。此外,MoC和NiNx之间的协同作用显著提高了镍催化剂的活性和稳定性。实验结果表明,Ni-MoC /NC700在温和条件下(90℃,5 bar H2)对16种不同取代基的芳香硝基化合物具有较高的转化率(>99%)和选择性(>95%)。
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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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