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Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts

Publication ,  Journal Article
Stone, ML; Cendejas, MC; Persson, A; Liccardo, G; Smith, J; Kumar, A; Zhou, C; Gardner, E; Aitbekova, A; Bustillo, KC; Chi, M; Bare, SR; Cargnello, M
Published in: ACS Catalysis
November 17, 2023

Platinum group metals (PGMs) are widely used for exhaust emission abatement. Sintering during high-temperature emission control conditions decreases noble metal utilization efficiency. Efficient use of scarce noble metals requires sinter-resistant catalysts. Here, we extend an approach to synthesize catalysts consisting of platinum nanoparticles encapsulated in a mixture of cerium and aluminum oxides (Pt@Al2O3-CeO2). We tested the activity of this catalyst toward carbon monoxide, propene, and propane oxidation, chosen as model oxidation reactions for emission control catalysts. Pt@Al2O3-CeO2 catalysts demonstrated similar activity and stability upon aging as the comparison system without ceria, Pt@Al2O3, while maintaining small Pt nanoparticles and ceria crystallites. Additionally, we studied the influence of various thermal treatments on the carbon monoxide (CO) oxidation activity and determined that a steam treatment can activate the low-temperature CO oxidation activity of Pt@Al2O3-CeO2. Scanning transmission electron microscope-energy-dispersive X-ray spectroscopy (STEM-EDS) analysis revealed that thermal treatments led to the colocation of Pt and CeO2, and temperature-programmed reduction analysis revealed that the steam treatment specifically enhanced CO oxidation activity through surface reduction of the CeO2. In summary, we demonstrate the versatility of this encapsulation approach to generate mixed metal-oxide supports with improved metal-support interactions without hindering the nanoparticle stability.

Duke Scholars

Published In

ACS Catalysis

DOI

EISSN

2155-5435

Publication Date

November 17, 2023

Volume

13

Issue

22

Start / End Page

14853 / 14863

Related Subject Headings

  • 3406 Physical chemistry
  • 3405 Organic chemistry
  • 3106 Industrial biotechnology
  • 0904 Chemical Engineering
  • 0305 Organic Chemistry
  • 0302 Inorganic Chemistry
 

Citation

APA
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MLA
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Stone, M. L., Cendejas, M. C., Persson, A., Liccardo, G., Smith, J., Kumar, A., … Cargnello, M. (2023). Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts. ACS Catalysis, 13(22), 14853–14863. https://doi.org/10.1021/acscatal.3c02766
Stone, M. L., M. C. Cendejas, A. Persson, G. Liccardo, J. Smith, A. Kumar, C. Zhou, et al. “Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts.” ACS Catalysis 13, no. 22 (November 17, 2023): 14853–63. https://doi.org/10.1021/acscatal.3c02766.
Stone ML, Cendejas MC, Persson A, Liccardo G, Smith J, Kumar A, et al. Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts. ACS Catalysis. 2023 Nov 17;13(22):14853–63.
Stone, M. L., et al. “Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts.” ACS Catalysis, vol. 13, no. 22, Nov. 2023, pp. 14853–63. Scopus, doi:10.1021/acscatal.3c02766.
Stone ML, Cendejas MC, Persson A, Liccardo G, Smith J, Kumar A, Zhou C, Gardner E, Aitbekova A, Bustillo KC, Chi M, Bare SR, Cargnello M. Ceria Incorporation in Sinter-Resistant Platinum-Based Catalysts. ACS Catalysis. 2023 Nov 17;13(22):14853–14863.
Journal cover image

Published In

ACS Catalysis

DOI

EISSN

2155-5435

Publication Date

November 17, 2023

Volume

13

Issue

22

Start / End Page

14853 / 14863

Related Subject Headings

  • 3406 Physical chemistry
  • 3405 Organic chemistry
  • 3106 Industrial biotechnology
  • 0904 Chemical Engineering
  • 0305 Organic Chemistry
  • 0302 Inorganic Chemistry