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Identifying site-dependent reactivity in oxidation reactions on single Pt particles.
Dery, Shahar; Kim, Suhong; Haddad, David; Cossaro, Albano; Verdini, Alberto; Floreano, Luca; Toste, F Dean; Gross, Elad.
Afiliación
  • Dery S; Institute of Chemistry , The Hebrew University of Jerusalem , Jerusalem 91904 , Israel . Email: elad.gross@mail.huji.ac.il.
  • Kim S; The Center for Nanoscience and Nanotechnology , The Hebrew University of Jerusalem , Jerusalem 91904 , Israel.
  • Haddad D; Department of Chemistry , University of California , Berkeley , California 94720 , USA . Email: fdtoste@berkeley.edu.
  • Cossaro A; Institute of Chemistry , The Hebrew University of Jerusalem , Jerusalem 91904 , Israel . Email: elad.gross@mail.huji.ac.il.
  • Verdini A; The Center for Nanoscience and Nanotechnology , The Hebrew University of Jerusalem , Jerusalem 91904 , Israel.
  • Floreano L; CNR-IOM , Laboratorio Nazionale TASC , Basovizza SS-14 , Trieste 34012 , Italy.
  • Toste FD; CNR-IOM , Laboratorio Nazionale TASC , Basovizza SS-14 , Trieste 34012 , Italy.
  • Gross E; CNR-IOM , Laboratorio Nazionale TASC , Basovizza SS-14 , Trieste 34012 , Italy.
Chem Sci ; 9(31): 6523-6531, 2018 Aug 21.
Article en En | MEDLINE | ID: mdl-30310583
ABSTRACT
Catalytic nanoparticles are heterogeneous in their nature and even within the simplest particle various surface sites exist and influence the catalytic reactivity. Thus, detailed chemical information at the nanoscale is essential for understanding how surface properties and reaction conditions direct the reactivity of different surface sites of catalytic nanoparticles. In this work, hydroxyl-functionalized N-heterocyclic carbene molecules (NHCs) were anchored to the surface of Pt particles and utilized as chemical markers to detect reactivity variations between different surface sites under liquid and gas phase oxidizing conditions. Differences in the chemical reactivity of surface-anchored NHCs were identified using synchrotron-radiation-based infrared nanospectroscopy with a spatial resolution of 20 nanometers. By conducting IR nanospectroscopy measurements, along with complementary spatially averaged IR and X-ray spectroscopy measurements, we identified that enhanced reactivity occurred on the particles' periphery under both gas and liquid phase oxidizing conditions. Under gas phase reaction conditions the NHCs' hydroxyl functional groups underwent preferential oxidization to the acid along the perimeter of the particle. Exposure of the sample to harsher, liquid phase oxidizing conditions induced modification of the NHCs, which was mostly identified at the particle's periphery. Analysis of X-ray absorption spectroscopy measurements revealed that exposure of the sample to oxidizing conditions induced aromatization of the NHCs, presumably due to oxidative dehydrogenation reaction, along with reorientation of the NHCs from perpendicular to parallel to the Pt surface. These results, based on single particle measurements, demonstrate the high reactivity of surface sites that are located at the nanoparticle's periphery and the influence of reaction conditions on site-dependent reactivity.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2018 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2018 Tipo del documento: Article