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Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations

Publication ,  Journal Article
Chen, Y; Rana, R; Zhang, Y; Hoffman, AS; Huang, Z; Yang, B; Vila, FD; Perez-Aguilar, JE; Hong, J; Li, X; Zeng, J; Chi, M; Kronawitter, CX ...
Published in: Chemical Science
April 4, 2024

Supported noble metal catalysts, ubiquitous in chemical technology, often undergo dynamic transformations between reduced and oxidized states—which influence the metal nuclearities, oxidation states, and catalytic properties. In this investigation, we report the results of in situ X-ray absorption spectroscopy, scanning transmission electron microscopy, and other physical characterization techniques, bolstered by density functional theory, to elucidate the structural transformations of a set of MgO-supported palladium catalysts under oxidative treatment conditions. As the calcination temperature increased, the as-synthesized supported metallic palladium nanoparticles underwent oxidation to form palladium oxides (at approximately 400 °C), which, at approximately 500 °C, were oxidatively fragmented to form mixtures of atomically dispersed palladium cations. The data indicate two distinct types of atomically dispersed species: palladium cations located at MgO steps and those embedded in the first subsurface layer of MgO. The former exhibit significantly higher (>500 times) catalytic activity for ethylene hydrogenation than the latter. The results pave the way for designing highly active and stable supported palladium hydrogenation catalysts with optimized metal utilization.

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Published In

Chemical Science

DOI

EISSN

2041-6539

ISSN

2041-6520

Publication Date

April 4, 2024

Volume

15

Issue

17

Start / End Page

6454 / 6464

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences
 

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Chen, Y., Rana, R., Zhang, Y., Hoffman, A. S., Huang, Z., Yang, B., … Gates, B. C. (2024). Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations. Chemical Science, 15(17), 6454–6464. https://doi.org/10.1039/d4sc00035h
Chen, Y., R. Rana, Y. Zhang, A. S. Hoffman, Z. Huang, B. Yang, F. D. Vila, et al. “Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations.” Chemical Science 15, no. 17 (April 4, 2024): 6454–64. https://doi.org/10.1039/d4sc00035h.
Chen Y, Rana R, Zhang Y, Hoffman AS, Huang Z, Yang B, et al. Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations. Chemical Science. 2024 Apr 4;15(17):6454–64.
Chen, Y., et al. “Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations.” Chemical Science, vol. 15, no. 17, Apr. 2024, pp. 6454–64. Scopus, doi:10.1039/d4sc00035h.
Chen Y, Rana R, Zhang Y, Hoffman AS, Huang Z, Yang B, Vila FD, Perez-Aguilar JE, Hong J, Li X, Zeng J, Chi M, Kronawitter CX, Wang H, Bare SR, Kulkarni AR, Gates BC. Dynamic structural evolution of MgO-supported palladium catalysts: from metal to metal oxide nanoparticles to surface then subsurface atomically dispersed cations. Chemical Science. 2024 Apr 4;15(17):6454–6464.
Journal cover image

Published In

Chemical Science

DOI

EISSN

2041-6539

ISSN

2041-6520

Publication Date

April 4, 2024

Volume

15

Issue

17

Start / End Page

6454 / 6464

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences