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Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry

[Image: see text] Controlling and understanding reaction temperature variations in catalytic processes are crucial for assessing the performance of a catalyst material. Local temperature measurements are challenging, however. Luminescence thermometry is a promising remote-sensing tool, but it is cro...

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Autores principales: Jacobs, Thimo S., van Swieten, Thomas P., Vonk, Sander J. W., Bosman, Isa P., Melcherts, Angela E. M., Janssen, Bas C., Janssens, Joris C. L., Monai, Matteo, Meijerink, Andries, Rabouw, Freddy T., van der Stam, Ward, Weckhuysen, Bert M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10604088/
https://www.ncbi.nlm.nih.gov/pubmed/37797269
http://dx.doi.org/10.1021/acsnano.3c05622
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author Jacobs, Thimo S.
van Swieten, Thomas P.
Vonk, Sander J. W.
Bosman, Isa P.
Melcherts, Angela E. M.
Janssen, Bas C.
Janssens, Joris C. L.
Monai, Matteo
Meijerink, Andries
Rabouw, Freddy T.
van der Stam, Ward
Weckhuysen, Bert M.
author_facet Jacobs, Thimo S.
van Swieten, Thomas P.
Vonk, Sander J. W.
Bosman, Isa P.
Melcherts, Angela E. M.
Janssen, Bas C.
Janssens, Joris C. L.
Monai, Matteo
Meijerink, Andries
Rabouw, Freddy T.
van der Stam, Ward
Weckhuysen, Bert M.
author_sort Jacobs, Thimo S.
collection PubMed
description [Image: see text] Controlling and understanding reaction temperature variations in catalytic processes are crucial for assessing the performance of a catalyst material. Local temperature measurements are challenging, however. Luminescence thermometry is a promising remote-sensing tool, but it is cross-sensitive to the optical properties of a sample and other external parameters. In this work, we measure spatial variations in the local temperature on the micrometer length scale during carbon dioxide (CO(2)) methanation over a TiO(2)-supported Ni catalyst and link them to variations in catalytic performance. We extract local temperatures from the temperature-dependent emission of Y(2)O(3):Nd(3+) particles, which are mixed with the CO(2) methanation catalyst. Scanning, where a near-infrared laser locally excites the emitting Nd(3+) ions, produces a temperature map with a micrometer pixel size. We first designed the Y(2)O(3):Nd(3+) particles for optimal temperature precision and characterized cross-sensitivity of the measured signal to parameters other than temperature, such as light absorption by the blackened sample due to coke deposition at elevated temperatures. Introducing reaction gases causes a local temperature increase of the catalyst of on average 6–25 K, increasing with the reactor set temperature in the range of 550–640 K. Pixel-to-pixel variations in the temperature increase show a standard deviation of up to 1.5 K, which are attributed to local variations in the catalytic reaction rate. Mapping and understanding such temperature variations are crucial for the optimization of overall catalyst performance on the nano- and macroscopic scale.
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spelling pubmed-106040882023-10-28 Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry Jacobs, Thimo S. van Swieten, Thomas P. Vonk, Sander J. W. Bosman, Isa P. Melcherts, Angela E. M. Janssen, Bas C. Janssens, Joris C. L. Monai, Matteo Meijerink, Andries Rabouw, Freddy T. van der Stam, Ward Weckhuysen, Bert M. ACS Nano [Image: see text] Controlling and understanding reaction temperature variations in catalytic processes are crucial for assessing the performance of a catalyst material. Local temperature measurements are challenging, however. Luminescence thermometry is a promising remote-sensing tool, but it is cross-sensitive to the optical properties of a sample and other external parameters. In this work, we measure spatial variations in the local temperature on the micrometer length scale during carbon dioxide (CO(2)) methanation over a TiO(2)-supported Ni catalyst and link them to variations in catalytic performance. We extract local temperatures from the temperature-dependent emission of Y(2)O(3):Nd(3+) particles, which are mixed with the CO(2) methanation catalyst. Scanning, where a near-infrared laser locally excites the emitting Nd(3+) ions, produces a temperature map with a micrometer pixel size. We first designed the Y(2)O(3):Nd(3+) particles for optimal temperature precision and characterized cross-sensitivity of the measured signal to parameters other than temperature, such as light absorption by the blackened sample due to coke deposition at elevated temperatures. Introducing reaction gases causes a local temperature increase of the catalyst of on average 6–25 K, increasing with the reactor set temperature in the range of 550–640 K. Pixel-to-pixel variations in the temperature increase show a standard deviation of up to 1.5 K, which are attributed to local variations in the catalytic reaction rate. Mapping and understanding such temperature variations are crucial for the optimization of overall catalyst performance on the nano- and macroscopic scale. American Chemical Society 2023-10-05 /pmc/articles/PMC10604088/ /pubmed/37797269 http://dx.doi.org/10.1021/acsnano.3c05622 Text en © 2023 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 Jacobs, Thimo S.
van Swieten, Thomas P.
Vonk, Sander J. W.
Bosman, Isa P.
Melcherts, Angela E. M.
Janssen, Bas C.
Janssens, Joris C. L.
Monai, Matteo
Meijerink, Andries
Rabouw, Freddy T.
van der Stam, Ward
Weckhuysen, Bert M.
Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title_full Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title_fullStr Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title_full_unstemmed Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title_short Mapping Temperature Heterogeneities during Catalytic CO(2) Methanation with Operando Luminescence Thermometry
title_sort mapping temperature heterogeneities during catalytic co(2) methanation with operando luminescence thermometry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10604088/
https://www.ncbi.nlm.nih.gov/pubmed/37797269
http://dx.doi.org/10.1021/acsnano.3c05622
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