Recent Insight in Transition Metal Anchored on Nitrogen-Doped Carbon Catalysts: Preparation and Catalysis Application

Boyang Li, L. Zhang, Jianrui Zhang, Yaqiong Su
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引用次数: 5

Abstract

The design and preparation of novel, high-efficiency, and low-cost heterogeneous catalysts are important topics in academic and industry research. In the past, inorganic materials, metal oxide, and carbon materials were used as supports for the development of heterogeneous catalysts due to their excellent properties, such as high specific surface areas and tunable porous structures. However, the properties of traditional pristine carbon materials cannot keep up with the sustained growth and requirements of industry and scientific research, since the introduction of nitrogen atoms into carbon materials may significantly enhance a variety of their physicochemical characteristics, which gradually become appropriate support for synthesizing supported transition metal catalysts. In the past several decades, the transition metal anchored on nitrogen-doped carbon catalysts has attracted a tremendous amount of interest as potentially useful catalysts for diverse chemical reactions. Compared with original carbon support, the doping of nitrogen atoms can significantly regulate the physicochemical properties of carbon materials and allow active metal species uniformly dispersed on the support. The various N species in support also play a critical role in accelerating the catalytic performance in some reactions. Besides, the interaction between support and transition metal active sites can offer an anchor site to stabilize metal species during the preparation process and then improve reaction performance, atomic utilization, and stability. In this review, we highlight the recent advances and the remaining challenges in the preparation and application of transition metal anchored on nitrogen-doped carbon catalysts.
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过渡金属锚定氮掺杂碳催化剂的研究进展:制备及催化应用
设计和制备新型、高效、低成本的多相催化剂是学术界和工业界研究的重要课题。过去,无机材料、金属氧化物和碳材料由于具有高比表面积和可调多孔结构等优异的性能,被用作多相催化剂的载体。然而,传统的原始碳材料的性能已经跟不上工业和科研的持续增长和要求,因为在碳材料中引入氮原子可以显著增强其多种物理化学特性,逐渐成为合成负载型过渡金属催化剂的合适载体。在过去的几十年里,过渡金属锚定在氮掺杂碳催化剂上,作为多种化学反应的潜在有用催化剂,引起了人们的极大兴趣。与原始碳载体相比,氮原子的掺杂可以显著调节碳材料的物理化学性质,使活性金属物质均匀分散在载体上。在某些反应中,载体中的各种N对加速催化性能也起着关键作用。此外,载体和过渡金属活性位点之间的相互作用可以提供一个锚点,在制备过程中稳定金属物种,从而提高反应性能、原子利用率和稳定性。本文综述了氮掺杂碳系过渡金属催化剂的制备和应用的最新进展和面临的挑战。
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