Very Low Temperature CO Oxidation over Atomically Precise Au25 Nanoclusters on MnO2

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Abstract

Atomically precise Au25 nanoclusters have garnered significant interest in the field of heterogeneous catalysis due to their remarkable activity and selectivity. However, for the extensively studied reaction of low-temperature CO oxidation, their performance has not been competitive compared to other known gold nanocatalysts. To address this, we deposited Au25(SR)18 (R = CH2CH2Ph) nanoclusters onto a manganese oxide support (Au25/MnO2), resulting in a very stable and highly active catalyst. By optimizing the pretreatment temperature, we were able to significantly enhance the performance of the Au25/MnO2 catalyst, which outperformed most other gold catalysts. Impressively, 100% conversion of CO was achieved at temperatures as low as −50 °C, with 50% conversion being reached below −70 °C. Furthermore, the existence of ligands could also influence the negative apparent activation energy observed at intermediate temperatures. Analysis using X-ray photoelectron spectroscopy (XPS), scanning transmission electron microscopy (STEM), and X-ray diffraction (XRD) techniques indicated that the Au25 nanoclusters remained stable on the catalyst surface even after pretreatment at high temperatures. In-situ modulation excitation spectroscopy (MES) spectra also confirmed that the Au cluster was the active site for CO oxidation, highlighting the potential of atomically precise Au25 nanoclusters as primary active sites at very low temperatures.

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Wang, X., Zhao, J., Eliasson, H., Erni, R., Ziarati, A., Mckeown Walker, S., & Bürgi, T. (2023). Very Low Temperature CO Oxidation over Atomically Precise Au25 Nanoclusters on MnO2. Journal of the American Chemical Society, 145(50), 27273–27281. https://doi.org/10.1021/jacs.3c06372

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