4.6 Article

Enhancing catalytic performance of dilute metal alloy nanomaterials

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COMMUNICATIONS CHEMISTRY
卷 3, 期 1, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s42004-020-0293-2

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  1. Integrated Mesoscale Architectures for Sustainable Catalysis (IMASC), an Energy Frontier Research Center - U.S. Department of Energy, Office of Science, Basic Energy Sciences [DE-SC0012573]
  2. TOTAL

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Dilute alloys are promising materials for sustainable chemical production; however, their composition and structure affect their performance. Herein, a comprehensive study of the effects of pretreatment conditions on the materials properties of Pd0.04Au0.96 nanoparticles partially embedded in porous silica is related to the activity for catalytic hydrogenation of 1-hexyne to 1-hexene. A combination of in situ characterization and theoretical calculations provide evidence that changes in palladium surface content are induced by treatment in oxygen, hydrogen and carbon monoxide at various temperatures. In turn, there are changes in hydrogenation activity because surface palladium is necessary for H-2 dissociation. These Pd0.04Au0.96 nanoparticles in the porous silica remain structurally intact under many cycles of activation and deactivation and are remarkably resistant to sintering, demonstrating that dilute alloy catalysts are highly dynamic systems that can be tuned and maintained in a active state. Dilute alloy nanoparticles are a promising class of heterogeneous catalysts, but how their composition and structure affects performance is imperfectly understood. Here dilute PdAu catalysts are shown to be highly dynamic, which enables systematic tuning of their structure and composition to maintain an active state.

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