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Insight into the active site and reaction mechanism for selective oxidation of methane to methanol using H2O2 on a Rh-1/ZrO2 catalyst

机译:在RH-1 / ZrO2催化剂上使用H 2 O 2对甲烷选择性氧化在甲烷中的活性位点和反应机理的洞察

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摘要

Direct methane conversion into value-added products has become increasingly important. However, it remains a great challenge to effectively activate methane and simultaneously suppress its over-oxidation. In this study, we performed a combined ab initio thermodynamics and DFT+U study to investigate the selective oxidation of methane to methanol on a ZrO2-supported Rh single-atom catalyst. The most preferred local environment of a Rh single atom was proposed according to the ab initio thermodynamics results. The DFT calculation results show that the five-coordinated Rh structure leads to the over-oxidation of CH3 species and thus prevents the formation of methanol. In contrast, the four-coordinated Rh can effectively stabilize the CH3 species by suppressing its further dehydrogenation. This is attributed to the fact that the geometric configuration of CH3 species at the four-coordinated Rh hinders the interaction between H in CH3 species and neighboring O. Two different methanol formation mechanisms at the four-coordinated Rh, namely the direct pathway and the CH3OOH intermediate pathway, were studied. It was found that the four-coordinated Rh facilitates the activation of H2O2 and the formation of CH3OOH, and thus the CH3OOH intermediate pathway plays a dominant role in methanol formation, in which CH3O species reacts with the OH group in H2O2 to form the CH3OOH intermediate and subsequently the deoxygenation of CH3OOH leads to the formation of methanol. This study provides atomic-scale insights into the active site and reaction mechanism for selective oxidation of methane to methanol on Rh-1/ZrO2 catalysts.
机译:将甲烷转化为增值产品变得越来越重要。然而,有效活化甲烷并同时抑制其过氧化仍然是一个很大的挑战。在这项研究中,我们进行了组合的AB初始热力学和DFT + U研究,以研究甲烷在ZrO2负载的RH单原子催化剂上的甲烷对甲醇的选择性氧化。根据AB Initio热力学结果提出了RH单个原子的最优选的局部环境。 DFT计算结果表明,五配位的RH结构导致CH3物种的过氧化,从而防止形成甲醇。相反,通过抑制其进一步的脱氢可以有效地稳定CH3物种。这归因于四个协调RH在四个协调RH下的CH3物种的几何构型阻碍了CH3物种的相互作用和相邻O.在四个协调RH下两种不同的甲醇形成机制,即直接途径和CH3OOH中间途径研究。发现四种协调的RH有利于H 2 O 2的活化和CH 3OH的形成,因此CH 3OH中间途径在甲醇形成中起主要作用,其中CH 3 O物质与H 2 O 2中的OH基团反应以形成CH 3OH中间体随后,CH 3OH的脱氧导致甲醇的形成。本研究为rh-1 / ZrO 2催化剂上的甲醇选择性氧化的活性位点和反应机制提供了原子尺度的洞察。

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  • 来源
    《New Journal of Chemistry》 |2020年第4期|共8页
  • 作者单位

    Jiangnan Univ Sch Chem &

    Mat Engn Dept Chem Engn Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Dept Chem Engn Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Dept Chem Engn Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Dept Chem Engn Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Dept Chem Engn Wuxi 214122 Jiangsu Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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