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Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane

[Image: see text] Knowledge of the electromagnetic microwave radiation–solid matter interaction and ensuing mechanisms at active catalytic sites will enable a deeper understanding of microwave-initiated chemical interactions and processes, and will lead to further optimization of this class of heter...

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Autores principales: Jie, Xiangyu, Chen, Roujia, Biddle, Tara, Slocombe, Daniel R., Dilworth, Jonathan Robin, Xiao, Tiancun, Edwards, Peter P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9134345/
https://www.ncbi.nlm.nih.gov/pubmed/35645460
http://dx.doi.org/10.1021/acs.chemmater.2c00630
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author Jie, Xiangyu
Chen, Roujia
Biddle, Tara
Slocombe, Daniel R.
Dilworth, Jonathan Robin
Xiao, Tiancun
Edwards, Peter P.
author_facet Jie, Xiangyu
Chen, Roujia
Biddle, Tara
Slocombe, Daniel R.
Dilworth, Jonathan Robin
Xiao, Tiancun
Edwards, Peter P.
author_sort Jie, Xiangyu
collection PubMed
description [Image: see text] Knowledge of the electromagnetic microwave radiation–solid matter interaction and ensuing mechanisms at active catalytic sites will enable a deeper understanding of microwave-initiated chemical interactions and processes, and will lead to further optimization of this class of heterogeneous catalysis. Here, we study the fundamental mechanism of the interaction between microwave radiation and solid Fe catalysts and the deep dehydrogenation of a model hydrocarbon, hexadecane. We find that the size-dependent electronic transition of particulate Fe metal from a microwave “reflector” to a microwave “absorber” lies at the heart of efficient metal catalysis in these heterogeneous processes. In this regard, the optimal particle size of a Fe metal catalyst for highly effective microwave-initiated dehydrogenation reactions is approximately 80–120 nm, and the catalytic performance is strongly dependent on the ratio of the mean radius of Fe particles to the microwave skin depth (r/δ) at the operating frequency. Importantly, the particle size of selected Fe catalysts will ultimately affect the basic heating properties of the catalysts and decisively influence their catalytic performance under microwave initiation. In addition, we have found that when two or more materials—present as a mechanical mixture—are simultaneously exposed to microwave irradiation, each constituent material will respond to the microwaves independently. Thus, the interaction between the two materials has been found to have synergistic effects, subsequently contributing to heating and improving the overall catalytic performance.
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spelling pubmed-91343452022-05-27 Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane Jie, Xiangyu Chen, Roujia Biddle, Tara Slocombe, Daniel R. Dilworth, Jonathan Robin Xiao, Tiancun Edwards, Peter P. Chem Mater [Image: see text] Knowledge of the electromagnetic microwave radiation–solid matter interaction and ensuing mechanisms at active catalytic sites will enable a deeper understanding of microwave-initiated chemical interactions and processes, and will lead to further optimization of this class of heterogeneous catalysis. Here, we study the fundamental mechanism of the interaction between microwave radiation and solid Fe catalysts and the deep dehydrogenation of a model hydrocarbon, hexadecane. We find that the size-dependent electronic transition of particulate Fe metal from a microwave “reflector” to a microwave “absorber” lies at the heart of efficient metal catalysis in these heterogeneous processes. In this regard, the optimal particle size of a Fe metal catalyst for highly effective microwave-initiated dehydrogenation reactions is approximately 80–120 nm, and the catalytic performance is strongly dependent on the ratio of the mean radius of Fe particles to the microwave skin depth (r/δ) at the operating frequency. Importantly, the particle size of selected Fe catalysts will ultimately affect the basic heating properties of the catalysts and decisively influence their catalytic performance under microwave initiation. In addition, we have found that when two or more materials—present as a mechanical mixture—are simultaneously exposed to microwave irradiation, each constituent material will respond to the microwaves independently. Thus, the interaction between the two materials has been found to have synergistic effects, subsequently contributing to heating and improving the overall catalytic performance. American Chemical Society 2022-05-13 2022-05-24 /pmc/articles/PMC9134345/ /pubmed/35645460 http://dx.doi.org/10.1021/acs.chemmater.2c00630 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 Jie, Xiangyu
Chen, Roujia
Biddle, Tara
Slocombe, Daniel R.
Dilworth, Jonathan Robin
Xiao, Tiancun
Edwards, Peter P.
Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title_full Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title_fullStr Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title_full_unstemmed Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title_short Size-Dependent Microwave Heating and Catalytic Activity of Fine Iron Particles in the Deep Dehydrogenation of Hexadecane
title_sort size-dependent microwave heating and catalytic activity of fine iron particles in the deep dehydrogenation of hexadecane
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9134345/
https://www.ncbi.nlm.nih.gov/pubmed/35645460
http://dx.doi.org/10.1021/acs.chemmater.2c00630
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