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Ceria catalysts at nanoscale: how do crystal shapes shape catalysis?

机译:纳米级的二氧化铈催化剂:晶体形状如何塑造催化作用?

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摘要

Engineering the shape and size of catalyst particles and the interface between different components of heterogeneous catalysts at the nanometer level can radically alter their performances. This is particularly true with CeO2-based catalysts, where the precise control of surface atomic arrangements can modify the reactivity of Ce4+/Ce3+ ions, changing the oxygen release/uptake characteristics of ceria, which, in turn, strongly affects catalytic performance in several reactions like CO, soot, and VOC oxidation, WGS, hydrogenation, acid–base reactions, and so on. Despite the fact that many of these catalysts are polycrystalline with rather ill-defined morphologies, experimental and theoretical studies on well-defined nanocrystals have clearly established that the exposure of specific facets can increase/decrease surface oxygen reactivity and metal–support interaction (for supported metal nanoparticles), consequently affecting catalytic reactions. Here, we want to address the most recent developments in this area, showing that shape (and size) modification, surface/face reconstruction, and faceting of ceria at the nanoscale level can offer an important tool to govern activity and stability in several reactions and imagine how this could contribute to future developments.
机译:在纳米水平上工程化催化剂颗粒的形状和尺寸以及非均相催化剂的不同组分之间的界面可以从根本上改变其性能。对于基于CeO2的催化剂尤其如此,其中对表面原子排列的精确控制可以改变Ce4 + / Ce3 +离子的反应性,改变二氧化铈的氧气释放/吸收特性,进而严重影响几个反应的催化性能。例如CO,烟灰和VOC氧化,WGS,氢化,酸碱反应等。尽管许多这类催化剂都是多晶的,但形态却不太明确,但对明确定义的纳米晶体进行的实验和理论研究清楚地表明,特定面的暴露可以增加/降低表面氧反应性和金属-载体相互作用(对于负载型金属纳米颗粒),因此影响催化反应。在这里,我们要探讨该领域的最新发展,表明纳米级的形状(和尺寸)修饰,表面/面重建和二氧化铈刻面可以提供重要的工具来控制几个反应中的活性和稳定性。想象一下这将如何促进未来的发展。

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