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Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy

[Image: see text] Using a combination of insitu bulk and surface characterization techniques, we provide atomic-scale insight into the complex surface and bulk dynamics of a LaNiO(3) perovskite material during heating in vacuo. Driven by the outstanding activity LaNiO(3) in the methane dry reforming...

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Autores principales: Cao, Pengfei, Tang, Pengyi, Bekheet, Maged F., Du, Hongchu, Yang, Luyan, Haug, Leander, Gili, Albert, Bischoff, Benjamin, Gurlo, Aleksander, Kunz, Martin, Dunin-Borkowski, Rafal E., Penner, Simon, Heggen, Marc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762657/
https://www.ncbi.nlm.nih.gov/pubmed/35059098
http://dx.doi.org/10.1021/acs.jpcc.1c09257
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author Cao, Pengfei
Tang, Pengyi
Bekheet, Maged F.
Du, Hongchu
Yang, Luyan
Haug, Leander
Gili, Albert
Bischoff, Benjamin
Gurlo, Aleksander
Kunz, Martin
Dunin-Borkowski, Rafal E.
Penner, Simon
Heggen, Marc
author_facet Cao, Pengfei
Tang, Pengyi
Bekheet, Maged F.
Du, Hongchu
Yang, Luyan
Haug, Leander
Gili, Albert
Bischoff, Benjamin
Gurlo, Aleksander
Kunz, Martin
Dunin-Borkowski, Rafal E.
Penner, Simon
Heggen, Marc
author_sort Cao, Pengfei
collection PubMed
description [Image: see text] Using a combination of insitu bulk and surface characterization techniques, we provide atomic-scale insight into the complex surface and bulk dynamics of a LaNiO(3) perovskite material during heating in vacuo. Driven by the outstanding activity LaNiO(3) in the methane dry reforming reaction (DRM), attributable to the decomposition of LaNiO(3) during DRM operation into a Ni//La(2)O(3) composite, we reveal the Ni exsolution dynamics both on a local and global scale by insitu electron microscopy, insitu X-ray diffraction and insitu X-ray photoelectron spectroscopy. To reduce the complexity and disentangle thermal from self-activation and reaction-induced effects, we embarked on a heating experiment in vacuo under comparable experimental conditions in all methods. Associated with the Ni exsolution, the remaining perovskite grains suffer a drastic shrinkage of the grain volume and compression of the structure. Ni particles mainly evolve at grain boundaries and stacking faults. Sophisticated structure analysis of the elemental composition by electron-energy loss mapping allows us to disentangle the distribution of the different structures resulting from LaNiO(3) decomposition on a local scale. Important for explaining the DRM activity, our results indicate that most of the Ni moieties are oxidized and that the formation of NiO occurs preferentially at grain edges, resulting from the reaction of the exsolved Ni particles with oxygen released from the perovskite lattice during decomposition via a spillover process from the perovskite to the Ni particles. Correlating electron microscopy and X-ray diffraction data allows us to establish a sequential two-step process in the decomposition of LaNiO(3) via a Ruddlesden–Popper La(2)NiO(4) intermediate structure. Exemplified for the archetypical LaNiO(3) perovskite material, our results underscore the importance of focusing on both surface and bulk characterization for a thorough understanding of the catalyst dynamics and set the stage for a generalized concept in the understanding of state-of-the art catalyst materials on an atomic level.
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spelling pubmed-87626572022-01-18 Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy Cao, Pengfei Tang, Pengyi Bekheet, Maged F. Du, Hongchu Yang, Luyan Haug, Leander Gili, Albert Bischoff, Benjamin Gurlo, Aleksander Kunz, Martin Dunin-Borkowski, Rafal E. Penner, Simon Heggen, Marc J Phys Chem C Nanomater Interfaces [Image: see text] Using a combination of insitu bulk and surface characterization techniques, we provide atomic-scale insight into the complex surface and bulk dynamics of a LaNiO(3) perovskite material during heating in vacuo. Driven by the outstanding activity LaNiO(3) in the methane dry reforming reaction (DRM), attributable to the decomposition of LaNiO(3) during DRM operation into a Ni//La(2)O(3) composite, we reveal the Ni exsolution dynamics both on a local and global scale by insitu electron microscopy, insitu X-ray diffraction and insitu X-ray photoelectron spectroscopy. To reduce the complexity and disentangle thermal from self-activation and reaction-induced effects, we embarked on a heating experiment in vacuo under comparable experimental conditions in all methods. Associated with the Ni exsolution, the remaining perovskite grains suffer a drastic shrinkage of the grain volume and compression of the structure. Ni particles mainly evolve at grain boundaries and stacking faults. Sophisticated structure analysis of the elemental composition by electron-energy loss mapping allows us to disentangle the distribution of the different structures resulting from LaNiO(3) decomposition on a local scale. Important for explaining the DRM activity, our results indicate that most of the Ni moieties are oxidized and that the formation of NiO occurs preferentially at grain edges, resulting from the reaction of the exsolved Ni particles with oxygen released from the perovskite lattice during decomposition via a spillover process from the perovskite to the Ni particles. Correlating electron microscopy and X-ray diffraction data allows us to establish a sequential two-step process in the decomposition of LaNiO(3) via a Ruddlesden–Popper La(2)NiO(4) intermediate structure. Exemplified for the archetypical LaNiO(3) perovskite material, our results underscore the importance of focusing on both surface and bulk characterization for a thorough understanding of the catalyst dynamics and set the stage for a generalized concept in the understanding of state-of-the art catalyst materials on an atomic level. American Chemical Society 2021-12-30 2022-01-13 /pmc/articles/PMC8762657/ /pubmed/35059098 http://dx.doi.org/10.1021/acs.jpcc.1c09257 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Cao, Pengfei
Tang, Pengyi
Bekheet, Maged F.
Du, Hongchu
Yang, Luyan
Haug, Leander
Gili, Albert
Bischoff, Benjamin
Gurlo, Aleksander
Kunz, Martin
Dunin-Borkowski, Rafal E.
Penner, Simon
Heggen, Marc
Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title_full Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title_fullStr Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title_full_unstemmed Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title_short Atomic-Scale Insights into Nickel Exsolution on LaNiO(3) Catalysts via In Situ Electron Microscopy
title_sort atomic-scale insights into nickel exsolution on lanio(3) catalysts via in situ electron microscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762657/
https://www.ncbi.nlm.nih.gov/pubmed/35059098
http://dx.doi.org/10.1021/acs.jpcc.1c09257
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