Direct atomic-scale investigation of the coarsening mechanisms of exsolved catalytic Ni nanoparticles
Abstract
Abstract Exsolution-active catalysts allow for the formation of highly active metallic nanoparticles, yet recent work has shown that their long-term thermal stability remains a challenge. In this work, the dynamics of exsolved Ni nanoparticles are probed in-situ with atomically resolved secondary electron imaging with environmental scanning transmission electron microscopy. Pre-characterization shows embedded NiO x nanostructures within the parent oxide. Subsequent in-situ exsolution demonstrates that two populations of exsolved particles form with distinct metal-support interactions and coarsening behaviors. Nanoparticles which precipitate above embedded nanostructures are observed to be more stable, and are prevented from migrating on the surface of the support. Nanoparticle migration which fits random-walk kinetics is observed, and particle behavior is shown to be analogous to a classical wetting model. Additionally, DFT calculations indicate that particle motion is facilitated by the support oxide. Ostwald ripening processes are visualized simultaneously to migration, including particle redissolution and particle ripening.
Article Details
Authors (16)
Dylan Jennings
Moritz L. Weber
Ansgar Meise
Tobias Binninger
Theory and Computation of Energy Materials (IET-3), Institute of Energy Technologies, Forschungszentrum Jülich GmbH 1 , 52425 Jülich,
Conor J. Price
Moritz Kindelmann
Ivar Reimanis
Hiroaki Matsumoto
Pengfei Cao
Regina Dittmann
Piotr M. Kowalski
Marc Heggen
Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich GmbH, Leo-Brandt-Str. 1, D-52428 Jülich, Germany
Olivier Guillon
Joachim Mayer
Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons
Felix Gunkel
Wolfgang Rheinheimer