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Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling

[Image: see text] The kinetic behavior of individual Rh(hkl) nanofacets coupled in a common reaction system was studied using the apex of a curved rhodium microcrystal (radius of 0.65 μm) as a model of a single catalytic particle and field electron microscopy for in situ imaging of catalytic hydroge...

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Autores principales: Zeininger, Johannes, Raab, Maximilian, Suchorski, Yuri, Buhr, Sebastian, Stöger-Pollach, Michael, Bernardi, Johannes, Rupprechter, Günther
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9594309/
https://www.ncbi.nlm.nih.gov/pubmed/36313520
http://dx.doi.org/10.1021/acscatal.2c02901
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author Zeininger, Johannes
Raab, Maximilian
Suchorski, Yuri
Buhr, Sebastian
Stöger-Pollach, Michael
Bernardi, Johannes
Rupprechter, Günther
author_facet Zeininger, Johannes
Raab, Maximilian
Suchorski, Yuri
Buhr, Sebastian
Stöger-Pollach, Michael
Bernardi, Johannes
Rupprechter, Günther
author_sort Zeininger, Johannes
collection PubMed
description [Image: see text] The kinetic behavior of individual Rh(hkl) nanofacets coupled in a common reaction system was studied using the apex of a curved rhodium microcrystal (radius of 0.65 μm) as a model of a single catalytic particle and field electron microscopy for in situ imaging of catalytic hydrogen oxidation. Depending on the extent of interfacet coupling via hydrogen diffusion, different oscillating reaction modes were observed including highly unusual multifrequential oscillations: differently oriented nanofacets oscillated with differing frequencies despite their immediate neighborhood. The transitions between different modes were induced by variations in the particle temperature, causing local surface reconstructions, which create locally protruding atomic rows. These atomic rows modified the coupling strength between individual nanofacets and caused the transitions between different oscillating modes. Effects such as entrainment, frequency locking, and reconstruction-induced collapse of spatial coupling were observed. To reveal the origin of the different experimentally observed effects, microkinetic simulations were performed for a network of 105 coupled oscillators, modeling the individual nanofacets communicating via hydrogen surface diffusion. The calculated behavior of the oscillators, the local frequencies, and the varying degree of spatial synchronization describe the experimental observations well.
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spelling pubmed-95943092022-10-26 Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling Zeininger, Johannes Raab, Maximilian Suchorski, Yuri Buhr, Sebastian Stöger-Pollach, Michael Bernardi, Johannes Rupprechter, Günther ACS Catal [Image: see text] The kinetic behavior of individual Rh(hkl) nanofacets coupled in a common reaction system was studied using the apex of a curved rhodium microcrystal (radius of 0.65 μm) as a model of a single catalytic particle and field electron microscopy for in situ imaging of catalytic hydrogen oxidation. Depending on the extent of interfacet coupling via hydrogen diffusion, different oscillating reaction modes were observed including highly unusual multifrequential oscillations: differently oriented nanofacets oscillated with differing frequencies despite their immediate neighborhood. The transitions between different modes were induced by variations in the particle temperature, causing local surface reconstructions, which create locally protruding atomic rows. These atomic rows modified the coupling strength between individual nanofacets and caused the transitions between different oscillating modes. Effects such as entrainment, frequency locking, and reconstruction-induced collapse of spatial coupling were observed. To reveal the origin of the different experimentally observed effects, microkinetic simulations were performed for a network of 105 coupled oscillators, modeling the individual nanofacets communicating via hydrogen surface diffusion. The calculated behavior of the oscillators, the local frequencies, and the varying degree of spatial synchronization describe the experimental observations well. American Chemical Society 2022-10-07 2022-10-21 /pmc/articles/PMC9594309/ /pubmed/36313520 http://dx.doi.org/10.1021/acscatal.2c02901 Text en © 2022 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 Zeininger, Johannes
Raab, Maximilian
Suchorski, Yuri
Buhr, Sebastian
Stöger-Pollach, Michael
Bernardi, Johannes
Rupprechter, Günther
Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title_full Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title_fullStr Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title_full_unstemmed Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title_short Reaction Modes on a Single Catalytic Particle: Nanoscale Imaging and Micro-Kinetic Modeling
title_sort reaction modes on a single catalytic particle: nanoscale imaging and micro-kinetic modeling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9594309/
https://www.ncbi.nlm.nih.gov/pubmed/36313520
http://dx.doi.org/10.1021/acscatal.2c02901
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