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Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage

This paper describes the preparation of new PEG(6000)–silica-MWCNTs composites as shape-stabilized phase change materials (ssPCMs) for application in latent heat storage. An innovative method was employed to obtain the new organic–inorganic hybrid materials, in which both a part of the PEG chains, u...

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Autores principales: Nistor, Cristina Lavinia, Gifu, Ioana Catalina, Anghel, Elena Maria, Ianchis, Raluca, Cirstea, Cristiana-Diana, Nicolae, Cristian Andi, Gabor, Augusta Raluca, Atkinson, Irina, Petcu, Cristian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10386010/
https://www.ncbi.nlm.nih.gov/pubmed/37514413
http://dx.doi.org/10.3390/polym15143022
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author Nistor, Cristina Lavinia
Gifu, Ioana Catalina
Anghel, Elena Maria
Ianchis, Raluca
Cirstea, Cristiana-Diana
Nicolae, Cristian Andi
Gabor, Augusta Raluca
Atkinson, Irina
Petcu, Cristian
author_facet Nistor, Cristina Lavinia
Gifu, Ioana Catalina
Anghel, Elena Maria
Ianchis, Raluca
Cirstea, Cristiana-Diana
Nicolae, Cristian Andi
Gabor, Augusta Raluca
Atkinson, Irina
Petcu, Cristian
author_sort Nistor, Cristina Lavinia
collection PubMed
description This paper describes the preparation of new PEG(6000)–silica-MWCNTs composites as shape-stabilized phase change materials (ssPCMs) for application in latent heat storage. An innovative method was employed to obtain the new organic–inorganic hybrid materials, in which both a part of the PEG chains, used as the phase change material, and a part of the hydroxyl functionalized multiwall carbon nanotubes (MWCNTs-OH), used as thermo-conductive fillers, were covalently connected by newly formed urethane bonds to the in-situ-generated silica matrix. The study’s main aim was to investigate the optimal amount of PEG(6000) that can be added to the fixed sol–gel reaction mixture so that no leakage of PEG occurs after repeated heating–cooling cycles. The findings show that the optimum PEG(6000)/NCOTEOS molar ratio was 2/1 (~91.5% PEG(6000)), because both the connected and free PEG chains interacted strongly with the in-situ-generated silica matrix to form a shape-stabilized material while preserving high phase-transition enthalpies (~153 J/G). Morphological and structural findings obtained by SEM, X-ray and Raman techniques indicated a distribution of the silica component in the amorphous phase (~27% for the optimum composition) located among the crystalline lamellae built by the folded chains of the PEG component. This composite maintained good chemical stability after a 450-cycle thermal test and had a good storage efficiency (~84%).
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spelling pubmed-103860102023-07-30 Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage Nistor, Cristina Lavinia Gifu, Ioana Catalina Anghel, Elena Maria Ianchis, Raluca Cirstea, Cristiana-Diana Nicolae, Cristian Andi Gabor, Augusta Raluca Atkinson, Irina Petcu, Cristian Polymers (Basel) Article This paper describes the preparation of new PEG(6000)–silica-MWCNTs composites as shape-stabilized phase change materials (ssPCMs) for application in latent heat storage. An innovative method was employed to obtain the new organic–inorganic hybrid materials, in which both a part of the PEG chains, used as the phase change material, and a part of the hydroxyl functionalized multiwall carbon nanotubes (MWCNTs-OH), used as thermo-conductive fillers, were covalently connected by newly formed urethane bonds to the in-situ-generated silica matrix. The study’s main aim was to investigate the optimal amount of PEG(6000) that can be added to the fixed sol–gel reaction mixture so that no leakage of PEG occurs after repeated heating–cooling cycles. The findings show that the optimum PEG(6000)/NCOTEOS molar ratio was 2/1 (~91.5% PEG(6000)), because both the connected and free PEG chains interacted strongly with the in-situ-generated silica matrix to form a shape-stabilized material while preserving high phase-transition enthalpies (~153 J/G). Morphological and structural findings obtained by SEM, X-ray and Raman techniques indicated a distribution of the silica component in the amorphous phase (~27% for the optimum composition) located among the crystalline lamellae built by the folded chains of the PEG component. This composite maintained good chemical stability after a 450-cycle thermal test and had a good storage efficiency (~84%). MDPI 2023-07-12 /pmc/articles/PMC10386010/ /pubmed/37514413 http://dx.doi.org/10.3390/polym15143022 Text en © 2023 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
Nistor, Cristina Lavinia
Gifu, Ioana Catalina
Anghel, Elena Maria
Ianchis, Raluca
Cirstea, Cristiana-Diana
Nicolae, Cristian Andi
Gabor, Augusta Raluca
Atkinson, Irina
Petcu, Cristian
Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title_full Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title_fullStr Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title_full_unstemmed Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title_short Novel PEG(6000)–Silica-MWCNTs Shape-Stabilized Composite Phase-Change Materials (ssCPCMs) for Thermal-Energy Storage
title_sort novel peg(6000)–silica-mwcnts shape-stabilized composite phase-change materials (sscpcms) for thermal-energy storage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10386010/
https://www.ncbi.nlm.nih.gov/pubmed/37514413
http://dx.doi.org/10.3390/polym15143022
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