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Evaluating the Effect of a Strong Metal-Support Interaction on the Activity of Molybdenum Carbide Supported Platinum Water-Gas Shift Catalysts.

机译:评价强金属-载体相互作用对碳化钼负载的铂水煤气变换催化剂活性的影响。

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摘要

The goal of this research was to understand an apparent strong interaction between platinum and molybdenum carbide (Mo2C), and its effect on the water-gas shift (WGS) activity of Pt/Mo2C catalysts. The state of the art catalyst for WGS is Cu/Zn/Al2O3, but several oxide supported Pt catalysts have also been shown to be active for WGS. Previous studies have shown that the activity of Mo2C and Pt/Mo2C catalysts can rival that of Cu/Zn/Al2O 3, but the reason for this high activity is unclear. This works uses a combined theoretical and experimental approach to understand the fundamental mechanisms that contribute to the observed, enhanced activity.;The strong interaction between Pt and Mo2C manifests itself through several defining phenomenon. First, the interaction affects the Pt loading mechanism. This interaction is observed through the ability of the Mo2C surface to directly reduce the Pt precursor in solution. This mechanism results in a highly dispersed Pt phase. Additionally, the interaction affects the Pt particle morphology. In this study, the particles were characterized using x-ray absorption spectroscopy and are hypothesized to be a mixture of small, raft-like particles and atomically dispersed Pt, again demonstrating the high dispersion of the Pt phase.;Mechanistic studies suggest that the catalyst is bifunctional, supporting the WGS red-ox mechanism. The Mo2C support provides sites for water dissociation and hydrogen evolution. It was proposed that a suitable descriptor for this site is oxygen binding energy, which is within an optimal range on Mo2C resulting in an enhanced WGS rate. The Pt phase provides binding sites for CO, which undergoes oxidation at the metal-support interface by oxygen on the Mo2C surface. The strong metal-support interaction affects the chemistry of the atomically dispersed Pt phase. Charge transfer from the surface molybdenum atoms to the sp-states of Pt causes CO to bind less strongly, which is also beneficial towards the overall rate.;In general, carbide supported catalysts exhibit interesting characteristics which can vary from those observed from traditional oxide supported catalysts and warrant further investigation.
机译:这项研究的目的是了解铂与碳化钼(Mo2C)之间明显的强相互作用,以及其对Pt / Mo2C催化剂的水煤气变换(WGS)活性的影响。 WGS的现有技术催化剂为Cu / Zn / Al2O3,但几种氧化物负载的Pt催化剂对WGS也具有活性。先前的研究表明,Mo2C和Pt / Mo2C催化剂的活性可以与Cu / Zn / Al2O 3媲美,但是尚不清楚这种高活性的原因。这项工作使用理论和实验相结合的方法来理解有助于观察到的,增强的活性的基本机理。; Pt和Mo2C之间的强相互作用通过几种定义现象得以体现。首先,相互作用会影响Pt加载机制。通过Mo2C表面直接还原溶液中Pt前体的能力可以观察到这种相互作用。该机理导致高度分散的Pt相。此外,相互作用会影响Pt颗粒的形貌。在这项研究中,使用X射线吸收光谱对颗粒进行了表征,并假设它们是小的,类似筏的颗粒和原子分散的Pt的混合物,再次证明了Pt相的高分散性。具有双功能,支持WGS氧化还原机制。 Mo2C支持提供了水离解和氢气释放的场所。有人提出该位点的合适描述词是氧结合能,它在Mo2C的最佳范围内,导致WGS速率提高。 Pt相提供了CO的结合位点,CO在Mo2C表面上的氧在金属-载体界面处发生氧化。强烈的金属-载体相互作用会影响原子分散的Pt相的化学性质。从表面钼原子到Pt的sp态的电荷转移导致CO结合力降低,这也有利于总速率。通常,碳化物负载的催化剂表现出令人感兴趣的特性,这些特性可能不同于传统氧化物负载的催化剂催化剂,需要进一步调查。

著录项

  • 作者

    Schweitzer, Neil Michael.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Chemistry Inorganic.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:36:56

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