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Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite

This work investigates the evolution of micro/meso pores during a mild thermal treatment of subbituminous coal based on the observation of coal structure changes with the gradual detachment of organic matter from the coal. Pores in coal can be described as super-micropores (d < 1 nm), micropores...

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Autores principales: Xu, Shipei, Han, Zhennan, Wu, Rongcheng, Cheng, Jiguang, Xu, Guangwen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078735/
https://www.ncbi.nlm.nih.gov/pubmed/35540829
http://dx.doi.org/10.1039/c7ra13215h
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author Xu, Shipei
Han, Zhennan
Wu, Rongcheng
Cheng, Jiguang
Xu, Guangwen
author_facet Xu, Shipei
Han, Zhennan
Wu, Rongcheng
Cheng, Jiguang
Xu, Guangwen
author_sort Xu, Shipei
collection PubMed
description This work investigates the evolution of micro/meso pores during a mild thermal treatment of subbituminous coal based on the observation of coal structure changes with the gradual detachment of organic matter from the coal. Pores in coal can be described as super-micropores (d < 1 nm), micropores (1 nm < d < 2 nm) and mesopores (2 nm < d < 50 nm). The decomposition of the carboxyl group at 200 °C decreases the super-micropore volume. A mild and sustained reaction takes place at 300 °C to gradually change the aromaticity and CH(2)/CH(3) ratio of the treated coal. The amount of micropore structure sharply decreases in the early stages of heating, while the amount of mesopore structure continuously decreases during the whole process. A dramatic reaction takes place at 400 °C to sharply change the aromaticity and CH(2)/CH(3) ratio of the treated coal, while the detachment of volatile compounds from the coal matrix caused an evident variation in the mesopore structure of the coal. The aromaticity and CH(2)/CH(3) ratio of coal organics are found to correlate with the volumes of super-micropores and mesopores, respectively. The super-micropores are identified as comprising the inter-layer distance between stacks of aromatic rings, and mesopores are the spaces between macromolecular aromatic rings which are inter-connected via aliphatic chains.
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spelling pubmed-90787352022-05-09 Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite Xu, Shipei Han, Zhennan Wu, Rongcheng Cheng, Jiguang Xu, Guangwen RSC Adv Chemistry This work investigates the evolution of micro/meso pores during a mild thermal treatment of subbituminous coal based on the observation of coal structure changes with the gradual detachment of organic matter from the coal. Pores in coal can be described as super-micropores (d < 1 nm), micropores (1 nm < d < 2 nm) and mesopores (2 nm < d < 50 nm). The decomposition of the carboxyl group at 200 °C decreases the super-micropore volume. A mild and sustained reaction takes place at 300 °C to gradually change the aromaticity and CH(2)/CH(3) ratio of the treated coal. The amount of micropore structure sharply decreases in the early stages of heating, while the amount of mesopore structure continuously decreases during the whole process. A dramatic reaction takes place at 400 °C to sharply change the aromaticity and CH(2)/CH(3) ratio of the treated coal, while the detachment of volatile compounds from the coal matrix caused an evident variation in the mesopore structure of the coal. The aromaticity and CH(2)/CH(3) ratio of coal organics are found to correlate with the volumes of super-micropores and mesopores, respectively. The super-micropores are identified as comprising the inter-layer distance between stacks of aromatic rings, and mesopores are the spaces between macromolecular aromatic rings which are inter-connected via aliphatic chains. The Royal Society of Chemistry 2018-03-09 /pmc/articles/PMC9078735/ /pubmed/35540829 http://dx.doi.org/10.1039/c7ra13215h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Xu, Shipei
Han, Zhennan
Wu, Rongcheng
Cheng, Jiguang
Xu, Guangwen
Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title_full Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title_fullStr Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title_full_unstemmed Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title_short Correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
title_sort correlating micro/meso pore evolution and chemical structure variation in a mild thermal treatment of a subbituminite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078735/
https://www.ncbi.nlm.nih.gov/pubmed/35540829
http://dx.doi.org/10.1039/c7ra13215h
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