Synthesis of a hollow structured core–shell Au@CeO 2 –ZrO 2 nanocatalyst and its excellent catalytic performance
We proposed a hard-templated and electrostatic attraction induced deposition method to prepare a hollow core–shell Au@CeO 2 –ZrO 2 nanocatalyst with a high surface area, in which a 6–8 nm ultrathin layer composed of CeO 2 –ZrO 2 nanocrystals is embedded with individual Au nanoparticles, forming a su...
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Published in | Journal of materials chemistry. A, Materials for energy and sustainability Vol. 5; no. 11; pp. 5601 - 5611 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
2017
|
Online Access | Get full text |
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Summary: | We proposed a hard-templated and electrostatic attraction induced deposition method to prepare a hollow core–shell Au@CeO
2
–ZrO
2
nanocatalyst with a high surface area, in which a 6–8 nm ultrathin layer composed of CeO
2
–ZrO
2
nanocrystals is embedded with individual Au nanoparticles, forming a sub-10 nm core–shell-like structure. In this hollow core–shell nanocatalyst, the mobility and growth of Au nanoparticles can be well inhibited even at 700 °C. For two model reactions of the selective reduction of 4-nitrophenol and CO oxidation, this Au@CeO
2
–ZrO
2
nanocatalyst shows good catalytic activity and stability, compared with Au/CeO
2
–ZrO
2
prepared by the deposition–precipitation (DP) method. For the CO oxidation, the activity of Au@CeO
2
–ZrO
2
can be well maintained after calcination at 700 °C, while negligible CO conversion is observed over DP-Au/CeO
2
–ZrO
2
. Further research shows that the improved catalytic performance of this hollow core–shell nanocatalyst can be attributed to the nanoscale core–shell structure, which effectively inhibits the migration and growth of the Au NPs, and maximizes the interface between the Au NPs and the CeO
2
–ZrO
2
. |
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ISSN: | 2050-7488 2050-7496 |
DOI: | 10.1039/C7TA00015D |