Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage

Summary: Efficient thermal energy harvesting using phase change materials (PCMs) has great potential for thermal energy storage and thermal management applications. Benefiting from these merits of pore structure diversity, convenient controllability, and excellent thermophysical stability, SiO2-base...

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Main Authors: Xiao Chen, Zhaodi Tang, Yueqi Chang, Hongyi Gao, Piao Cheng, Zhang Tao, Junjun Lv
Format: Article
Language:English
Published: Elsevier 2020-10-01
Series:iScience
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2589004220307987
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spelling doaj-bd6204a968be4f80b24228bba5f38b522020-11-25T03:38:43ZengElsevieriScience2589-00422020-10-012310101606Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy StorageXiao Chen0Zhaodi Tang1Yueqi Chang2Hongyi Gao3Piao Cheng4Zhang Tao5Junjun Lv6Institute of Advanced Materials, Beijing Normal University, Beijing 100875, PR China; Corresponding authorBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, PR ChinaBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, PR ChinaBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, PR ChinaInstitute of Advanced Materials, Beijing Normal University, Beijing 100875, PR ChinaBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, PR ChinaBeijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, PR ChinaSummary: Efficient thermal energy harvesting using phase change materials (PCMs) has great potential for thermal energy storage and thermal management applications. Benefiting from these merits of pore structure diversity, convenient controllability, and excellent thermophysical stability, SiO2-based composite PCMs have comparatively shown more promising prospect. In this regard, the microstructure-thermal property correlation of SiO2-based composite PCMs is still unclear despite the significant achievements in structural design. To enrich the fundamental understanding on the correlations between the microstructure and the thermal properties, we systematically summarize the state-of-the-art advances in SiO2-based composite PCMs for tuning thermal energy storage from the perspective of tailoring chemistry strategies. In this review, the tailoring chemistry influences of surface functional groups, pore sizes, dopants, single shell, and hybrid shells on the thermal properties of SiO2-based composite PCMs are systematically summarized and discussed. This review aims to provide in-depth insights into the correlation between structural designs and thermal properties, thus showing better guides on the tailor-made construction of high-performance SiO2-based composite PCMs. Finally, the current challenges and future recommendations for the tailoring chemistry are also highlighted.http://www.sciencedirect.com/science/article/pii/S2589004220307987Applied ChemistryMaterials ChemistryThermal PropertyMaterials Design
collection DOAJ
language English
format Article
sources DOAJ
author Xiao Chen
Zhaodi Tang
Yueqi Chang
Hongyi Gao
Piao Cheng
Zhang Tao
Junjun Lv
spellingShingle Xiao Chen
Zhaodi Tang
Yueqi Chang
Hongyi Gao
Piao Cheng
Zhang Tao
Junjun Lv
Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
iScience
Applied Chemistry
Materials Chemistry
Thermal Property
Materials Design
author_facet Xiao Chen
Zhaodi Tang
Yueqi Chang
Hongyi Gao
Piao Cheng
Zhang Tao
Junjun Lv
author_sort Xiao Chen
title Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
title_short Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
title_full Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
title_fullStr Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
title_full_unstemmed Toward Tailoring Chemistry of Silica-Based Phase Change Materials for Thermal Energy Storage
title_sort toward tailoring chemistry of silica-based phase change materials for thermal energy storage
publisher Elsevier
series iScience
issn 2589-0042
publishDate 2020-10-01
description Summary: Efficient thermal energy harvesting using phase change materials (PCMs) has great potential for thermal energy storage and thermal management applications. Benefiting from these merits of pore structure diversity, convenient controllability, and excellent thermophysical stability, SiO2-based composite PCMs have comparatively shown more promising prospect. In this regard, the microstructure-thermal property correlation of SiO2-based composite PCMs is still unclear despite the significant achievements in structural design. To enrich the fundamental understanding on the correlations between the microstructure and the thermal properties, we systematically summarize the state-of-the-art advances in SiO2-based composite PCMs for tuning thermal energy storage from the perspective of tailoring chemistry strategies. In this review, the tailoring chemistry influences of surface functional groups, pore sizes, dopants, single shell, and hybrid shells on the thermal properties of SiO2-based composite PCMs are systematically summarized and discussed. This review aims to provide in-depth insights into the correlation between structural designs and thermal properties, thus showing better guides on the tailor-made construction of high-performance SiO2-based composite PCMs. Finally, the current challenges and future recommendations for the tailoring chemistry are also highlighted.
topic Applied Chemistry
Materials Chemistry
Thermal Property
Materials Design
url http://www.sciencedirect.com/science/article/pii/S2589004220307987
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