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利用原位透射电子显微镜研究多相催化中的强金属-载体相互作用。

Using In situ Transmission Electron Microscopy to Study Strong Metal-Support Interactions in Heterogeneous Catalysis.

作者信息

Dai Jie, Sun Yifei, Liu Zhewei, Zhang Yiyuan, Duan Sibin, Wang Rongming

机构信息

Beijing Key Laboratory for Magneto-Photoelectrical Composite and Interface Science, The State Key Laboratory for Advanced Metals and Materials, School of Mathematics and Physics, University of Science and Technology Beijing, Beijing, 100083, China.

出版信息

Angew Chem Int Ed Engl. 2024 Oct 14;63(42):e202409673. doi: 10.1002/anie.202409673. Epub 2024 Sep 12.

Abstract

Precisely controlling the microstructure of supported metal catalysts and regulating metal-support interactions at the atomic level are essential for achieving highly efficient heterogeneous catalysts. Strong metal-support interaction (SMSI) not only stabilizes metal nanoparticles and improves their resistance to sintering but also modulates the electrical interaction between metal species and the support, optimizing the catalytic activity and selectivity. Therefore, understating the formation mechanism of SMSI and its dynamic evolution during the chemical reaction at the atomic scale is crucial for guiding the structural design and performance optimization of supported metal catalysts. Recent advancements in in situ transmission electron microscopy (TEM) have shed new light on these complex phenomena, providing deeper insights into the SMSI dynamics. Here, the research progress of in situ TEM investigation on SMSI in heterogeneous catalysis is systematically reviewed, focusing on the formation dynamics, structural evolution during the catalytic reactions, and regulation methods of SMSI. The significant advantages of in situ TEM technologies for SMSI research are also highlighted. Moreover, the challenges and probable development paths of in situ TEM studies on the SMSI are also provided.

摘要

精确控制负载型金属催化剂的微观结构并在原子水平上调节金属-载体相互作用对于实现高效多相催化剂至关重要。强金属-载体相互作用(SMSI)不仅能稳定金属纳米颗粒并提高其抗烧结性,还能调节金属物种与载体之间的电相互作用,优化催化活性和选择性。因此,在原子尺度上理解SMSI的形成机制及其在化学反应过程中的动态演变对于指导负载型金属催化剂的结构设计和性能优化至关重要。原位透射电子显微镜(TEM)的最新进展为这些复杂现象带来了新的启示,为深入了解SMSI动力学提供了更深刻的见解。在此,系统综述了原位TEM在多相催化中对SMSI的研究进展,重点关注SMSI的形成动力学、催化反应过程中的结构演变以及调控方法。还强调了原位TEM技术在SMSI研究中的显著优势。此外,还介绍了原位TEM对SMSI研究面临的挑战和可能的发展路径。

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