Atif Sial, Ting Gao
(, ), Qibing Dong
(, ), Ximing Li
(, ), Haitao Ren
(, ), Xinxin Liang
(, ), Yongqian Cui
(, ), Chuanyi Wang
(, )
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Recent innovations in <i>in-situ</i> TEM techniques have opened new avenues to observe the progress of heterogeneous catalysis with unparalleled spatial precision, superior energy resolution, and precise temporal resolution in controlled or realistic catalytic environments. Herein, we have reviewed the established and evolving techniques for monitoring catalysts through the utilization of <i>in-situ</i> TEM. By combining <i>in-situ</i> TEM with cutting-edge spectroscopic methodologies like atomic electron tomography (AET), 4D-STEM, cryogenic electron microscopy, and monochromated electron energy loss spectroscopy (EELS), a comprehensive approach to catalyst observation is achieved. Likewise, this advancement is expected to highlight and expand the crucial role of <i>in-situ</i> TEM in elucidating catalyst surface structures, active sites, and reaction pathways across key catalytic reactions, shaping the field of research in heterogeneous catalysis. 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Advancements in in-situ transmission electron microscopy for comprehensive analysis of heterogeneous catalysis: insights into the nanoscale dynamic processes
The advances in transmission electron microscopy (TEM) have greatly improved the characterization of heterogeneous catalysts, offering valuable insights into their operational efficacy through the correlation of their physico-chemical characteristics with performance, specificity, and robustness at nanoscales. Understanding tangible catalyst attributes and corresponding catalytic processes necessitates the identification and rationalization of catalyst behavior modifications during reaction conditions. Recent innovations in in-situ TEM techniques have opened new avenues to observe the progress of heterogeneous catalysis with unparalleled spatial precision, superior energy resolution, and precise temporal resolution in controlled or realistic catalytic environments. Herein, we have reviewed the established and evolving techniques for monitoring catalysts through the utilization of in-situ TEM. By combining in-situ TEM with cutting-edge spectroscopic methodologies like atomic electron tomography (AET), 4D-STEM, cryogenic electron microscopy, and monochromated electron energy loss spectroscopy (EELS), a comprehensive approach to catalyst observation is achieved. Likewise, this advancement is expected to highlight and expand the crucial role of in-situ TEM in elucidating catalyst surface structures, active sites, and reaction pathways across key catalytic reactions, shaping the field of research in heterogeneous catalysis. Finally, the potential applications, advantages, and challenges of using in-situ TEM are emphasized and addressed in detail.
期刊介绍:
Science China Materials (SCM) is a globally peer-reviewed journal that covers all facets of materials science. It is supervised by the Chinese Academy of Sciences and co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China. The journal is jointly published monthly in both printed and electronic forms by Science China Press and Springer. The aim of SCM is to encourage communication of high-quality, innovative research results at the cutting-edge interface of materials science with chemistry, physics, biology, and engineering. It focuses on breakthroughs from around the world and aims to become a world-leading academic journal for materials science.