4.8 Article

Crystal-Phase-Mediated Restructuring of Pt on TiO2 with Tunable Reactivity: Redispersion versus Reshaping

期刊

ACS CATALYSIS
卷 12, 期 6, 页码 3634-3643

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c05695

关键词

dynamic restructuring; crystal phase mediated; redispersion; reshaping; tunable reactivity

资金

  1. National Natural Science Foundation of China [21872145, 22072151, 91961204]
  2. CAS Project for Young Scientists in Basic Research [YSBR-022]
  3. Dalian Institute of Chemical Physics [DICP I202107]
  4. Liaoning Revitalization Talents Program [XLYC1807121]

向作者/读者索取更多资源

This study reveals the different effects of rutile and anatase phases on the reshaping and redispersion of Pt nanoparticles, achieving opposite catalytic activities by tuning their restructuring behaviors. This provides an effective route for designing catalysts with controlled catalytic structures and reactivities.
Restructuring of supported metal nanoparticles (NPs) (e.g., reshaping and redispersion) is of tremendous interest for the rational design of well-defined catalyst materials, but the underlying mechanism to tune their dynamic behaviors and thus reactivity is still unspecified. Here, we show a crystal-phase-mediated redispersion/reshaping of Pt NPs on TiO2, boosting opposite reactivities in hydrogenation/oxidation reactions. Utilizing a variety of state-of-the-art characterization methods, we unraveled that rutile TiO2 favors the reshaping of Pt NPs into two-dimensional planar geometry, whereas the anatase surface facilitates the redispersion of Pt NPs to single atoms (SAs) upon the same calcination procedure. Environmental transmission electron microscopy and density functional theory calculations were employed to directly visualize the dynamic transformation of Pt NPs and reveal the specific role of TiO(2)supports in promoting the stability and diffusion of Pt SAs. As a result, the opposite reactivity was achieved by tuning their distinct restructuring behaviors. Thus, the redispersion of Pt on anatase TiO2 facilitates the selective hydrogenation of phenylacetylene with a high styrene yield of 21.22 X 10(-2) s(-1), whereas the reshaping on the rutile phase favors the combustion of methane with a turnover frequency as high as 3.11 X 10(-2) s(-1). Our results therefore open up an effective route for tuning the restructuring behavior of supported metal catalysts and designing catalysts with controlled catalytic structures and reactivities.

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