Predicting Catalyst Performance From Pt/CeO <sub>2</sub> Redispersion Kinetics

F Florian Maurer (Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany) A Agustin Salcedo (LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France) M Maria Casapu (Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany) D David Loffreda (LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France) A Arik Beck (Department of Chemical Engineering) P Paolo Dolcet (Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany) M Mimoun Aouine (Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France) T Thierry Epicier (Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France) S Stephane Loridant (Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France) P Philippe Vernoux (Université Claude Bernard Lyon 1, CNRS, IRCELYON, UMR 5256) C Carine Michel (LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France) J Jan‐Dierk Grunwaldt (Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany)

Abstract

ABSTRACT Quantitative description of the structural dynamics of nanoparticles by kinetic data is challenging but would represent a significant knowledge leap, as this would enable the forecast of their properties, e.g., in catalysis. A striking example in catalysis is the redispersion of Pt nanoparticles into single atoms in Pt/CeO 2 ‐based catalysts. In this work, we combined environmental transmission electron microscopy (ETEM) measurements with catalytic data to monitor the individual decay of Pt nanoparticles on defined CeO 2 nanocubes. Supported by density functional theory modeling, this provides unprecedented insight into their dynamic behavior, including kinetics. We observed that the rate of noble metal redispersion is strongly dependent on the local structural environment: the presence of other nearby nanoparticles and heterogeneities on the CeO 2 surface reduced the redispersion rate. Independent of the initial particle size and local environment, the particle volume decreases linearly in time, indicating a constant flux of Pt atoms from the nanoparticles. These findings at the atomic scale were correlated to the observed changes in the integral catalytic performance, allowing a first prediction of the catalyst activity based on the redispersion process and demonstrating how atomic‐scale kinetic insights can be correlated to macroscopic effects.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 26, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

F

Florian Maurer

Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany

A

Agustin Salcedo

LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France

M

Maria Casapu

Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany

D

David Loffreda

LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France

A

Arik Beck

Department of Chemical Engineering

P

Paolo Dolcet

Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany

M

Mimoun Aouine

Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France

T

Thierry Epicier

Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France

S

Stephane Loridant

Université Lyon 1, CNRS Ircelyon, UMR 5256 Villeurbanne France

P

Philippe Vernoux

Université Claude Bernard Lyon 1, CNRS, IRCELYON, UMR 5256

C

Carine Michel

LCH, UMR 5182 CNRS, ENS De Lyon, Université Claude Bernard Lyon 1 Lyon France

J

Jan‐Dierk Grunwaldt

Institute for Chemical Technology and Polymer Chemistry (ITCP) Karlsruhe Institute of Technology (KIT) Karlsruhe Germany