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通过催化反应的原位相关显微镜观察成像界面和粒径效应

Imaging Interface and Particle Size Effects by In Situ Correlative Microscopy of a Catalytic Reaction.

作者信息

Winkler Philipp, Raab Maximilian, Zeininger Johannes, Rois Lea M, Suchorski Yuri, Stöger-Pollach Michael, Amati Matteo, Parmar Rahul, Gregoratti Luca, Rupprechter Günther

机构信息

Institute of Materials Chemistry, TU Wien, Getreidemarkt 9, Vienna 1060, Austria.

University Service Center for Transmission Electron Microscopy, TU Wien, Wiedner Hauptstraße 8-10, Vienna 1040, Austria.

出版信息

ACS Catal. 2023 May 23;13(11):7650-7660. doi: 10.1021/acscatal.3c00060. eCollection 2023 Jun 2.

Abstract

The catalytic behavior of Rh particles supported by three different materials (Rh, Au, and ZrO) in H oxidation has been studied in situ by correlative photoemission electron microscopy (PEEM) and scanning photoemission electron microscopy (SPEM). Kinetic transitions between the inactive and active steady states were monitored, and self-sustaining oscillations on supported Rh particles were observed. Catalytic performance differed depending on the support and Rh particle size. Oscillations varied from particle size-independent (Rh/Rh) via size-dependent (Rh/ZrO) to fully inhibited (Rh/Au). For Rh/Au, the formation of a surface alloy induced such effects, whereas for Rh/ZrO, the formation of substoichiometric Zr oxides on the Rh surface, enhanced oxygen bonding, Rh-oxidation, and hydrogen spillover onto the ZrO support were held responsible. The experimental observations were complemented by micro-kinetic simulations, based on variations of hydrogen adsorption and oxygen binding. The results demonstrate how correlative in situ surface microscopy enables linking of the local structure, composition, and catalytic performance.

摘要

通过关联光发射电子显微镜(PEEM)和扫描光发射电子显微镜(SPEM),对负载于三种不同材料(Rh、Au和ZrO)上的Rh颗粒在H氧化反应中的催化行为进行了原位研究。监测了非活性和活性稳态之间的动力学转变,并观察到负载Rh颗粒上的自持振荡。催化性能因载体和Rh颗粒尺寸而异。振荡情况从与颗粒尺寸无关(Rh/Rh)到与尺寸有关(Rh/ZrO),再到完全被抑制(Rh/Au)。对于Rh/Au,表面合金的形成导致了这种效应,而对于Rh/ZrO,Rh表面亚化学计量Zr氧化物的形成、增强的氧键合、Rh氧化以及氢溢流到ZrO载体上被认为是其原因。基于氢吸附和氧结合的变化,通过微观动力学模拟对实验观察结果进行了补充。结果表明,关联原位表面显微镜如何能够将局部结构、组成和催化性能联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5ca/10242684/21d7f2ab9a8f/cs3c00060_0002.jpg

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