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Theoretical insights into the thermal reduction of N-2 to NH3 over a single metal atom incorporated nitrogen-doped graphene

机译:在单个金属原子上掺入氮掺杂石墨烯的N-2至NH3的理论见解

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摘要

Density functional theory calculations have been performed to study the reaction mechanism of N-2 thermal reduction (N2TR) over a single metal atom incorporated nitrogen-doped graphene. Our results reveal that the type of metal atoms and their coordination environments have a significant effect on the catalytic activity of N2TR. Regarding CoN4- and FeN4-embedded graphene sheets that the metal atom is fourfold coordinated, they are inactive for N2TR owing to the poor stability of the adsorbed H-2 and N-2 molecules. In contrast, if the monodisperse metal atom is surrounded by three N atoms, namely, CoN3/G and FeN3/G show activity toward N2TR, and catalytic conversion of N-2 into ammonia is achieved through the associative mechanism rather than the dissociative mechanism. Further investigations show that the synthesis of NH3 over the two surfaces is mainly through the formation of an NHNH* intermediate; however, the detailed reaction mechanisms are sensitive to the type of metal atom introduced into N-doped graphene. Based on the calculated kinetic barriers, FeN3/G exhibits a better catalytic activity for N2TR. The superior performance of FeN3/G can be attributed to the fact that this surface prefers a high spin-polarized state during the whole process of N2TR, while the non-spin polarized state is predicted as the ground state for most of the elementary steps of N-2-fixation over CoN3/G. The present study provides theoretical insights into developing graphene-based single atom catalysts with a high activity toward ammonia synthesis through N2TR.
机译:用密度泛函理论计算了氮掺杂石墨烯在单金属原子上的N-2热还原反应机理。我们的结果表明,金属原子的类型及其配位环境对N2TR的催化活性有显著影响。对于金属原子为四配位的CoN4-和FeN4嵌入石墨烯片,由于吸附的H-2和N-2分子稳定性差,它们对N2TR不起作用。相反,如果单分散金属原子被三个N原子包围,即CoN3/G和FeN3/G对N2TR表现出活性,则N-2催化转化为氨是通过缔合机制而不是解离机制实现的。进一步的研究表明,NH3在两个表面上的合成主要是通过生成NHNH*中间体;然而,详细的反应机理对引入N掺杂石墨烯的金属原子的类型很敏感。根据计算的动力学势垒,FeN3/G对N2TR具有较好的催化活性。FeN3/G的优异性能可归因于该表面在N2TR的整个过程中更倾向于高自旋极化状态,而非自旋极化态被预测为CoN3/G上N-2固定的大多数基本步骤的基态。本研究为开发通过N2TR合成氨的高活性石墨烯基单原子催化剂提供了理论见解。

著录项

  • 来源
    《The Journal of Chemical Physics》 |2021年第5期|共16页
  • 作者单位

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

    Fuzhou Univ Coll Chem State Key Lab Photocatalysis Energy &

    Environm Fuzhou 350116 Fujian Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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