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首页> 外文期刊>Topics in Catalysis >Catalysis in Energy Generation and Conversion: How Insight Into Nanostructure, Composition, and Electronic Structure Leads to Better Catalysts (Perspective)
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Catalysis in Energy Generation and Conversion: How Insight Into Nanostructure, Composition, and Electronic Structure Leads to Better Catalysts (Perspective)

机译:能量产生和转化中的催化作用:对纳米结构,组成和电子结构的洞察力如何导致更好的催化剂(观点)

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Catalysts are essential for the generation of energy carriers like hydrocarbon fuels, hydrogen, and electrical current. The performance of catalysts can be related to their nanostructure (i.e., size and shape) and composition. To rationally design catalysts by tuning these properties, they should be measured in a meaningful way using surface-sensitive spectroscopic tools under reaction conditions. In this perspective, we provide case histories of recently published research aimed at understanding these properties using a spectroscopic strategy under reaction conditions. We limit this perspective to studies whose main focus was to understand how the nanostructure and composition impact the active phase and/or efficiency of catalysts for the generation and conversion of energy carriers. We discuss studies of a Pd/Ga2O3 catalyst for the generation of hydrogen fuel from methanol and water, a PtMo catalyst for the generation of hydrogen fuel from biomass and water, Pt/Rh catalysts for the conversion of hydrogen into electrical current, a CeO_x catalyst for the conversion of hydrogen into electrical current, and Fe and Co/CoPt catalysts for the generation of hydrocarbon fuel from carbon monoxide and hydrogen. Each study emphasizes how the use of spectroscopic tools under reactive conditions is beneficial for making rational decisions for improving catalysts. The studies demonstrate how different synthesis methods dictate the nanostructure and distribution of alloy components in the catalyst, certain pretreatment conditions create the active surface phase, while reactions and post-treatments can destroy it, and the nanostructure and composition change the electronic structure and alter the selectivity and activity.
机译:催化剂对于生成碳氢燃料,氢和电流等能量载体至关重要。催化剂的性能可以与它们的纳米结构(即尺寸和形状)和组成有关。为了通过调节这些性能合理地设计催化剂,应在反应条件下使用表面敏感光谱仪以有意义的方式对其进行测量。从这个角度来看,我们提供了最近发表的研究的案例历史,旨在通过在反应条件下使用光谱策略来理解这些特性。我们将这种观点局限于主要研究目的是了解纳米结构和组成如何影响催化剂的活性相和/或能量载体的产生和转化的效率的研究。我们讨论以下研究:从甲醇和水制取氢燃料的Pd / Ga2O3催化剂,从生物质和水制取氢燃料的PtMo催化剂,将氢转化为电流的Pt / Rh催化剂,CeO_x催化剂用于将氢转化为电流的催化剂,以及用于从一氧化碳和氢生成烃类燃料的Fe和Co / CoPt催化剂。每项研究都强调在反应条件下使用分光镜工具如何有利于做出合理的决定,以改善催化剂。研究表明,不同的合成方法如何决定催化剂中合金组分的纳米结构和分布,某些预处理条件会产生活性表面相,而反应和后处理会破坏它,并且纳米结构和成分会改变电子结构并改变表面活性。选择性和活性。

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