Controlling the Strong Metal‐Support Interaction Overlayer Structure in Pt/TiO2 Catalysts Prevents Particle Evaporation

Author:

Beck Arik123ORCID,Frey Hannes1ORCID,Huang Xing4ORCID,Clark Adam H.2ORCID,Goodman Emmett D.5ORCID,Cargnello Matteo5ORCID,Willinger Marc6ORCID,van Bokhoven Jeroen A.12ORCID

Affiliation:

1. Eidgenössische Technische Hochschule Zürich Rämistrasse 101 8092 Zurich Switzerland

2. Paul Scherrer Institute Forschungsstrasse 111 5232 Villigen Switzerland

3. University of California Santa Barbara 552 University Rd. Isla Vista CA 93117 USA

4. Fuzhou University 2 Xue Yuan Road, University Town Fuzhou P.R. China

5. Stanford University 450 Serra Mall Stanford CA 94305 USA

6. Technische Universität München Arcisstraße 21 80333 München Germany

Abstract

AbstractPlatinum nanoparticles (NPs) supported by titania exhibit a strong metal‐support interaction (SMSI)[1] that can induce overlayer formation and encapsulation of the NP's with a thin layer of support material. This encapsulation modifies the catalyst's properties, such as increasing its chemoselectivity[2] and stabilizing it against sintering.[3] Encapsulation is typically induced during high‐temperature reductive activation and can be reversed through oxidative treatments.[1] However, recent findings indicate that the overlayer can be stable in oxygen.[4, 5] Using in situ transmission electron microscopy, we investigated how the overlayer changes with varying conditions. We found that exposure to oxygen below 400 °C caused disorder and removal of the overlayer upon subsequent hydrogen treatment. In contrast, elevating the temperature to 900 °C while maintaining the oxygen atmosphere preserved the overlayer, preventing platinum evaporation when exposed to oxygen. Our findings demonstrate how different treatments can influence the stability of nanoparticles with or without titania overlayers. expanding the concept of SMSI and enabling noble metal catalysts to operate in harsh environments without evaporation associated losses during burn‐off cycling.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Wiley

Subject

General Medicine

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