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Restructuring effects of the chemical environment in metal nanocatalysis and single-atom catalysis

机译:金属纳米分析和单原子催化中化学环境的重组效果

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摘要

Metal-based heterogeneous catalysts mostly consist of supported nanoparticles of a few nanometers in size, since these objects provide a good compromise between exposed active surface area and structural stability. However, far from being static, heterogeneous catalysts constantly evolve under reaction conditions, thereby creating and removing surface sites in response to their gaseous or liquid reactive environment. Modern ex situ and in situ investigations have shown that nanocatalysts at work can face a number of deep restructuring phenomena, such as morphological change, compound formation, segregation, leaching, as well as redispersion and other metalsupport interaction effects. Recently emerging single-atom catalysts are-like subnanometric clusters-especially sensitive to their chemical environment. Using examples from the recent literature with a particular emphasis on operando characterization studies, this article reviews the main dynamic effects induced by the reaction medium on nanocatalysts (including nanoalloy catalysts) and single-atom catalysts.
机译:金属基多相催化剂主要由大小为几纳米的负载纳米颗粒组成,因为这些物体在暴露的活性表面积和结构稳定性之间提供了良好的折衷。然而,非均相催化剂远非静态,而是在反应条件下不断演化,从而根据其气体或液体反应环境产生和移除表面位置。现代的非原位和原位研究表明,工作中的纳米催化剂可能会面临许多深度重组现象,如形态变化、化合物形成、偏析、浸出,以及再分散和其他金属载体相互作用效应。最近出现的单原子催化剂类似于亚纳米团簇,对其化学环境特别敏感。本文利用最近文献中特别强调操作数表征研究的例子,综述了反应介质对纳米催化剂(包括纳米合金催化剂)和单原子催化剂的主要动力学效应。

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