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Dynamic In Situ Microscopy in Single-Atom Catalysis: Advancing the Frontiers of Chemical Research AITranslate

university of york; university of york
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Publisher: Elsevier
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Abstract AITranslate

Most heterogeneous catalytic processes occur between combinations of gases, liquids, and solids at elevated temperatures. They play a critical role for society in energy production, health care, a cleaner environment, industrial products, food, fuel cells, battery technologies, and photocatalysis. Dynamic gas–solid catalyst reactions take place at the atomic level, with active catalyst structures forming, and often also progressively and competitively deactivating, under reaction conditions. There is increasing evidence that single atoms and small clusters of atoms can act as primary active sites in catalytic reactions. Understanding and directing the reactions at the atomic level under controlled operating conditions are crucial for the development of improved materials and processes. We review advances in dynamic in situ microscopy for directly probing heterogeneous catalysis at the atomic level in live action and real time. Benefits include new knowledge and improved management of process fundamentals for greater efficiency and sustainability.

KeyWords AITranslate

dynamic in situ electron microscopy live action singleatom catalysis
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Basic Information:

DOI:https://doi.org/10.1146/annurev-matsci-080921-102024

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Citation Information:

Most heterogeneous catalytic processes occur between combinations of gases, liquids, and solids at elevated temperatures. They play a critical role for society in energy production, health care, a cleaner environment, industrial products, food, fuel cells, battery technologies, and photocatalysis. Dynamic gas–solid catalyst reactions take place at the atomic level, with active catalyst structures forming, and often also progressively and competitively deactivating, under reaction conditions. There is increasing evidence that single atoms and small clusters of atoms can act as primary active sites in catalytic reactions. Understanding and directing the reactions at the atomic level under controlled operating conditions are crucial for the development of improved materials and processes. We review advances in dynamic in situ microscopy for directly probing heterogeneous catalysis at the atomic level in live action and real time. Benefits include new knowledge and improved management of process fundamentals for greater efficiency and sustainability.

quote

GB/T 7714-2015 [1] Pratibha L. Gai, Edward D. Boyes. Annual Review of Materials Research, 2023(53). DOI:10.1146/annurev-matsci-080921-102024.
MLA [1] Pratibha L. Gai, and Edward D. Boyes. Annual Review of Materials Research, no. 53, 2023, https://doi.org/10.1146/annurev-matsci-080921-102024.
APA [1] Pratibha L. Gai, & Edward D. Boyes. (2023). Annual Review of Materials Research(53). https://doi.org/10.1146/annurev-matsci-080921-102024
IEEE [1] Pratibha L. Gai and Edward D. Boyes, Annual Review of Materials Research, no. 53, 2023, doi: 10.1146/annurev-matsci-080921-102024. keywords: {dynamic in situ electron microscopy;live action singleatom catalysis}