Recent progress in the application of Ni-based catalysts for the dry reforming of methane

J. J. Torrez-Herrera, S. Korili, A. Gil
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引用次数: 13

Abstract

ABSTRACT Ni-based catalysts are highly efficient in methane-reforming processes. In the particular case of methane reforming in the presence of carbon dioxide, or dry reforming of methane (DRM), it is necessary to modify and control the initial properties of the catalyst to confer on it resistance to carbon deposition in particular, and to sintering of the Ni metal particles. In this regard, catalytic supports and promoters of different natures have been proposed. Likewise, the addition of small amounts of noble metals to avoid oxidation of the Ni active phase during the reforming reaction has been proposed. Catalyst preparation methods have also been identified as being of particular interest, since they can affect the structure of the Ni metal particles. In this review, the thermodynamic and kinetic aspects of the dry reforming of methane reaction are presented first. The most recent developments in synthetic methods (impregnation, sol-gel, co-precipitation, equilibrium deposition filtration, atomic layer deposition, non-thermal glow discharge plasma, multi-bubble sonoluminescence, “core-shell” structure) aimed at maximizing the dispersion and thermal resistance of Ni particles are then discussed and compared. The catalytic supports used to promote dispersion of the active metallic phase, the oxygen-storage capacity, and the metal/support interaction are also described. The review then addresses the fact that both the nature of the support and the addition of promoters and other metallic phases that modify the surface properties can control the interaction between the metal and the support, the electronic density of the active phase, and the degree of Ni reduction. Finally, new lines of research focused on the DRM process to make the reaction conditions milder and favor the process at low temperatures are also summarized.
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镍基催化剂在甲烷干重整中的应用进展
镍基催化剂在甲烷重整过程中具有很高的效率。在有二氧化碳存在的甲烷重整或甲烷干重整(DRM)的特殊情况下,有必要修改和控制催化剂的初始性质,使其具有抗碳沉积的能力,特别是抗Ni金属颗粒的烧结能力。在这方面,已经提出了不同性质的催化载体和促进剂。同样,在重整反应中加入少量贵金属以避免Ni活性相的氧化也被提出。催化剂的制备方法也被认为是特别有趣的,因为它们可以影响镍金属颗粒的结构。本文首先介绍了甲烷干重整反应的热力学和动力学方面的研究进展。然后讨论和比较了旨在最大化Ni颗粒分散和热阻的合成方法(浸渍、溶胶-凝胶、共沉淀法、平衡沉积过滤、原子层沉积、非热辉光放电等离子体、多泡声致发光、“核-壳”结构)的最新进展。还描述了用于促进活性金属相分散的催化载体、储氧能力和金属/载体的相互作用。然后回顾了这样一个事实,即载体的性质和添加促进剂和其他金属相可以改变表面性能,可以控制金属与载体之间的相互作用,活性相的电子密度和Ni还原程度。最后,总结了DRM工艺的新研究方向,以使反应条件更温和,有利于在低温下进行。
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