Cargando…

Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism

A simple heat treatment method was used to optimize the three-dimensional network structure of the hydrophobic aerogel, and during the heat treatment process at 200–1000 °C, the thermal conductivity of the aerogel reached the lowest to 0.02240 W/m·K between 250 °C and 300 °C, which was mainly due to...

Descripción completa

Detalles Bibliográficos
Autores principales: Lun, Zhiyi, Gong, Lunlun, Zhang, Zhongxin, Deng, Yurui, Zhou, Yong, Pan, Yuelei, Cheng, Xudong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953605/
https://www.ncbi.nlm.nih.gov/pubmed/35323254
http://dx.doi.org/10.3390/gels8030141
_version_ 1784675892421722112
author Lun, Zhiyi
Gong, Lunlun
Zhang, Zhongxin
Deng, Yurui
Zhou, Yong
Pan, Yuelei
Cheng, Xudong
author_facet Lun, Zhiyi
Gong, Lunlun
Zhang, Zhongxin
Deng, Yurui
Zhou, Yong
Pan, Yuelei
Cheng, Xudong
author_sort Lun, Zhiyi
collection PubMed
description A simple heat treatment method was used to optimize the three-dimensional network structure of the hydrophobic aerogel, and during the heat treatment process at 200–1000 °C, the thermal conductivity of the aerogel reached the lowest to 0.02240 W/m·K between 250 °C and 300 °C, which was mainly due to the optimization of microstructure and pyrolysis of surface groups. Further Fluent heat-transfer simulation also confirmed the above results. Synchrotron vacuum ultraviolet photoionization mass spectrometry (SVUV-PIMS) was used to finely measure the pyrolysis process of aerogels, and the pyrolysis process of aerogel was divided into four stages. (I) Until 419 °C, as the temperature continued to rise, surface methyl groups were oxidized to form hydroxyl. (II) As the temperature reached to 232 °C, the oxidation proceeded. In addition, inside the aerogel, because of lacking oxygen, the reaction produced CH(4) and C–Si bonds would form. (III) After 283 °C, Si–OH groups began to condense to form Si–O–Si, which optimized the three-dimensional network structures to be beneficial to improve the thermal insulation performance of silica aerogel. (IV) When it reached 547 °C, the chemical reaction was terminated, and all the primary particles gradually fused into secondary particles and sintered to form clusters.
format Online
Article
Text
id pubmed-8953605
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-89536052022-03-26 Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism Lun, Zhiyi Gong, Lunlun Zhang, Zhongxin Deng, Yurui Zhou, Yong Pan, Yuelei Cheng, Xudong Gels Article A simple heat treatment method was used to optimize the three-dimensional network structure of the hydrophobic aerogel, and during the heat treatment process at 200–1000 °C, the thermal conductivity of the aerogel reached the lowest to 0.02240 W/m·K between 250 °C and 300 °C, which was mainly due to the optimization of microstructure and pyrolysis of surface groups. Further Fluent heat-transfer simulation also confirmed the above results. Synchrotron vacuum ultraviolet photoionization mass spectrometry (SVUV-PIMS) was used to finely measure the pyrolysis process of aerogels, and the pyrolysis process of aerogel was divided into four stages. (I) Until 419 °C, as the temperature continued to rise, surface methyl groups were oxidized to form hydroxyl. (II) As the temperature reached to 232 °C, the oxidation proceeded. In addition, inside the aerogel, because of lacking oxygen, the reaction produced CH(4) and C–Si bonds would form. (III) After 283 °C, Si–OH groups began to condense to form Si–O–Si, which optimized the three-dimensional network structures to be beneficial to improve the thermal insulation performance of silica aerogel. (IV) When it reached 547 °C, the chemical reaction was terminated, and all the primary particles gradually fused into secondary particles and sintered to form clusters. MDPI 2022-02-23 /pmc/articles/PMC8953605/ /pubmed/35323254 http://dx.doi.org/10.3390/gels8030141 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lun, Zhiyi
Gong, Lunlun
Zhang, Zhongxin
Deng, Yurui
Zhou, Yong
Pan, Yuelei
Cheng, Xudong
Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title_full Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title_fullStr Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title_full_unstemmed Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title_short Improvement of the Thermal Insulation Performance of Silica Aerogel by Proper Heat Treatment: Microporous Structures Changes and Pyrolysis Mechanism
title_sort improvement of the thermal insulation performance of silica aerogel by proper heat treatment: microporous structures changes and pyrolysis mechanism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953605/
https://www.ncbi.nlm.nih.gov/pubmed/35323254
http://dx.doi.org/10.3390/gels8030141
work_keys_str_mv AT lunzhiyi improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT gonglunlun improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT zhangzhongxin improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT dengyurui improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT zhouyong improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT panyuelei improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism
AT chengxudong improvementofthethermalinsulationperformanceofsilicaaerogelbyproperheattreatmentmicroporousstructureschangesandpyrolysismechanism