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An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction

Publication ,  Journal Article
Chen, H; Jie, K; Jafta, CJ; Yang, Z; Yao, S; Liu, M; Zhang, Z; Liu, J; Chi, M; Fu, J; Dai, S
Published in: Applied Catalysis B: Environmental
November 5, 2020

Designing high-performance catalysts that can stabilize catalytic active sites against sintering to deactivation at temperature higher than 900 °C is significant but challenging. Here we report a new strategy to obtain a transition metal oxide catalyst with high temperature stability for CO oxidation. This is achieved through a synergistic interfacial interaction at the interface of a heterostructure between high–entropy oxides (HEO, high temperature stability) and CuCeOx (catalytic site). The catalytic site (CuCeOx) for CO oxidation is realized by dissolving an amount of Cu species in HEO into CeO2 via an entropy–driven mechanochemical process. In situ XRD and HAADF–STEM have confirmed the high temperature stability of the heterostructure CuCeOx–HEO, which can remain its CO oxidation catalytic activity at elevated temperatures. It should be expected that this innovative will offer the potential to the synthesis of catalysts with high temperature stability in industry.

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Published In

Applied Catalysis B: Environmental

DOI

ISSN

0926-3373

Publication Date

November 5, 2020

Volume

276

Related Subject Headings

  • Physical Chemistry
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 3406 Physical chemistry
  • 0907 Environmental Engineering
  • 0904 Chemical Engineering
  • 0306 Physical Chemistry (incl. Structural)
 

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Chen, H., Jie, K., Jafta, C. J., Yang, Z., Yao, S., Liu, M., … Dai, S. (2020). An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction. Applied Catalysis B: Environmental, 276. https://doi.org/10.1016/j.apcatb.2020.119155
Chen, H., K. Jie, C. J. Jafta, Z. Yang, S. Yao, M. Liu, Z. Zhang, et al. “An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction.” Applied Catalysis B: Environmental 276 (November 5, 2020). https://doi.org/10.1016/j.apcatb.2020.119155.
Chen, H., et al. “An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction.” Applied Catalysis B: Environmental, vol. 276, Nov. 2020. Scopus, doi:10.1016/j.apcatb.2020.119155.
Chen H, Jie K, Jafta CJ, Yang Z, Yao S, Liu M, Zhang Z, Liu J, Chi M, Fu J, Dai S. An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction. Applied Catalysis B: Environmental. 2020 Nov 5;276.
Journal cover image

Published In

Applied Catalysis B: Environmental

DOI

ISSN

0926-3373

Publication Date

November 5, 2020

Volume

276

Related Subject Headings

  • Physical Chemistry
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 3406 Physical chemistry
  • 0907 Environmental Engineering
  • 0904 Chemical Engineering
  • 0306 Physical Chemistry (incl. Structural)