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Stability and Reactivity of ∈-χ-θ Iron Carbide Catalyst Phases in Fischer-Tropsch Synthesis: Controllingμ_c

机译:费-托合成中ε-χ-θ碳化铁催化剂相的稳定性和反应性:控制μ_c

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摘要

The stability and reactivity of ∈, χ, and θ iron carbide phases in Fischer-Tropsch synthesis (FTS) catalysts as a function of relevant reaction conditions was investigated by a synergistic combination of experimental and theoretical methods. Combined in situ X-ray Absorption Fine Structure Spectroscopy/ X-ray Diffraction/Raman Spectroscopy was applied to study Fe-based catalysts during pretreatment and, for the first time, at relevant high pressure Fischer-Tropsch synthesis conditions, while Density Functional Theory calculations formed a fundamental basis for understanding the influence of pretreatment and FTS conditions on the formation of bulk iron carbide phases. By combining theory and experiment, it was found that the formation of θ-Fe_3C, χ-Fe_5C_2, and ∈-carbides can be explained by their relative thermodynamic stability as imposed by gas phase composition and temperature. Furthermore, it was shown that a significant part of the Fe phases was present as amorphous carbide phases during high pressure FTS, sometimes in an equivalent amount to the crystalline iron carbide fraction. A catalyst containing mainly crystalline χ-Fe_5C_2 was highly susceptible to oxidation during FTS conditions, while a catalyst containing θ-Fe_3C and amorphous carbide phases showed a lower activity and selectivity, mainly due to the buildup of carbonaceous deposits on the catalyst surface, suggesting that amorphous phases and the resulting textural properties play an important role in determining final catalyst performance. The findings further uncovered the thermodynamic and kinetic factors inducing the ∈-χ-θ carbide transformation as a function of the carbon chemical potentialrnμc.
机译:通过实验和理论方法的协同研究,研究了费-托合成(FTS)催化剂中ε,χ和θ碳化铁相的稳定性和反应性。结合原位X射线吸收精细结构光谱法/ X射线衍射/拉曼光谱法研究了预处理过程中的铁基催化剂,并首次在相关的高压费托合成条件下进行了铁基催化剂的研究,同时进行了密度泛函理论的计算为理解预处理和FTS条件对块状碳化铁相形成的影响奠定了基础。通过理论和实验相结合,发现θ-Fe_3C,χ-Fe_5C_2和ε-碳化物的形成可以用气相组成和温度所引起的相对热力学稳定性来解释。此外,已经表明,在高压FTS期间,大部分的Fe相以非晶态碳化物相存在,有时与结晶的碳化铁级分相当。主要包含结晶χ-Fe_5C_2的催化剂在FTS条件下极易被氧化,而包含θ-Fe_3C和无定形碳化物相的催化剂则显示出较低的活性和选择性,这主要归因于催化剂表面碳质沉积物的堆积。非晶相和所得的质构性质在确定最终催化剂性能中起重要作用。这些发现进一步揭示了引起ε-χ-θ碳化物转变的热力学和动力学因素,它是碳化学势rnμc的函数。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第42期|p.14928-14941|共14页
  • 作者单位

    Inorganic Chemistry and Catalysis, Debye Institute for Nanomaterials Science, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands;

    rnUniversite de Lyon, Institut de Chimie de Lyon, Laboratoire de Chimie, Eecole Normale Superieure de Lyon and CNRS, 46 Allee d'ltalie, F-69364 Lyon Cedex 07, France;

    rnInorganic Chemistry and Catalysis, Debye Institute for Nanomaterials Science, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands;

    rnSwiss-Norwegian Beamlines, European Synchrotron Radiation Facility, 6 Rue Jules Horowitz, BP220, F-38043 Grenoble Cedex, France;

    rnSwiss-Norwegian Beamlines, European Synchrotron Radiation Facility, 6 Rue Jules Horowitz, BP220, F-38043 Grenoble Cedex, France Dipartimento di Scienze e Tecnologie Avanzate and Nano-SiSTeMI Interdisciplinary Centre, Universita del Piemonte Orientale 'A. Avogadro', Viale T. Michel 11, 15121 Alessandria, Italy;

    rnUniversite de Lyon, Institut de Chimie de Lyon, Laboratoire de Chimie, Eecole Normale Superieure de Lyon and CNRS, 46 Allee d'ltalie, F-69364 Lyon Cedex 07, France;

    rnInorganic Chemistry and Catalysis, Debye Institute for Nanomaterials Science, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands;

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