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通过环境透射电子显微镜和原位X射线叠层成像研究氧化还原条件下用于二甲醚合成的双功能铜基核@沸石壳催化剂的稳定性

Stability of a Bifunctional Cu-Based Core@Zeolite Shell Catalyst for Dimethyl Ether Synthesis Under Redox Conditions Studied by Environmental Transmission Electron Microscopy and In Situ X-Ray Ptychography.

作者信息

Baier Sina, Damsgaard Christian D, Klumpp Michael, Reinhardt Juliane, Sheppard Thomas, Balogh Zoltan, Kasama Takeshi, Benzi Federico, Wagner Jakob B, Schwieger Wilhelm, Schroer Christian G, Grunwaldt Jan-Dierk

机构信息

1Institute for Chemical Technology and Polymer Chemistry,Karlsruhe Institute of Technology,76131 Karlsruhe,Germany.

2Center for Electron Nanoscopy,Technical University of Denmark,2800 Kgs. Lyngby,Denmark.

出版信息

Microsc Microanal. 2017 Jun;23(3):501-512. doi: 10.1017/S1431927617000332. Epub 2017 Apr 5.

Abstract

When using bifunctional core@shell catalysts, the stability of both the shell and core-shell interface is crucial for catalytic applications. In the present study, we elucidate the stability of a CuO/ZnO/Al2O3@ZSM-5 core@shell material, used for one-stage synthesis of dimethyl ether from synthesis gas. The catalyst stability was studied in a hierarchical manner by complementary environmental transmission electron microscopy (ETEM), scanning electron microscopy (SEM) and in situ hard X-ray ptychography with a specially designed in situ cell. Both reductive activation and reoxidation were applied. The core-shell interface was found to be stable during reducing and oxidizing treatment at 250°C as observed by ETEM and in situ X-ray ptychography, although strong changes occurred in the core on a 10 nm scale due to the reduction of copper oxide to metallic copper particles. At 350°C, in situ X-ray ptychography indicated the occurrence of structural changes also on the µm scale, i.e. the core material and parts of the shell undergo restructuring. Nevertheless, the crucial core-shell interface required for full bifunctionality appeared to remain stable. This study demonstrates the potential of these correlative in situ microscopy techniques for hierarchically designed catalysts.

摘要

在使用双功能核壳催化剂时,壳层以及核壳界面的稳定性对于催化应用至关重要。在本研究中,我们阐明了用于合成气一步法合成二甲醚的CuO/ZnO/Al₂O₃@ZSM-5核壳材料的稳定性。通过互补环境透射电子显微镜(ETEM)、扫描电子显微镜(SEM)以及使用专门设计的原位池的原位硬X射线叠层成像,以分层方式研究了催化剂的稳定性。同时进行了还原活化和再氧化。ETEM和原位X射线叠层成像观察到,在250°C的还原和氧化处理过程中,核壳界面是稳定的,尽管由于氧化铜还原为金属铜颗粒,核在10纳米尺度上发生了强烈变化。在350°C时,原位X射线叠层成像表明在微米尺度上也发生了结构变化,即核材料和部分壳层发生了重组。然而,实现完全双功能所需的关键核壳界面似乎保持稳定。这项研究证明了这些相关原位显微镜技术在分层设计催化剂方面的潜力。

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