Chapter 10. Nanoparticles in the Water–Gas Shift Reaction and Steam Reforming Reactions

J. Múnera, B. Faroldi, L. Cornaglia
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引用次数: 2

Abstract

This chapter focuses on a discussion of the significance of metal particle size on catalyst activity and stability for the production of hydrogen as a clean energy carrier via reforming reactions, and in particular how the particle size can influence metal oxidation and carbon formation. Numerous catalysts based on noble metals such as rhodium, platinum, iridium, palladium and ruthenium, as well as on non-noble metals such as cobalt, nickel and copper, have been studied for methane reforming, steam reforming of ethanol and the water–gas shift reaction. The design of noble and non-noble metal nanoparticles as catalysts for the production of hydrogen at different operating conditions is analysed. Several reports are discussed taking into account how the catalytic activity of metal-based materials varies with respect to the particle size. In addition, the role of metal dispersion is related to the resistance to carbon deposition and oxidation of the reduced species under reaction conditions. Correlations between the specific activity and the metal nanoparticle size have been proposed. However, the catalytic activity and the selectivity to hydrogen are highly dependent on the metal–support interactions.
第十章。纳米颗粒在水气转换反应和蒸汽重整反应中的应用
本章重点讨论金属粒度对催化剂活性和稳定性的重要性,通过重整反应生产氢作为清洁能源载体,特别是粒度如何影响金属氧化和碳的形成。许多基于贵金属如铑、铂、铱、钯和钌以及非贵金属如钴、镍和铜的催化剂已经被研究用于甲烷重整、乙醇的蒸汽重整和水煤气变换反应。分析了不同操作条件下贵金属和非贵金属纳米颗粒制氢催化剂的设计。考虑到金属基材料的催化活性如何随颗粒大小而变化,讨论了几个报告。此外,金属分散的作用与反应条件下还原物的抗积碳性和抗氧化性有关。提出了比活度与金属纳米颗粒尺寸之间的关系。然而,催化活性和对氢的选择性高度依赖于金属-载体相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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