Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires
Abstract The synthesis of core@double‐shells structured TiO2@C@SiO2 nanowires (NWs) with variable thickness of carbon inner shell and SiO2 outer shell was achieved by individually controlling the chemical vapour deposition time and amount of silicon precursor added in the sol–gel synthesis. The resu...
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Online Access: | https://doi.org/10.1049/nde2.12003 |
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doaj-c124e50831b74cd88493c30420d53c0c2021-04-20T13:45:22ZengWileyIET Nanodielectrics2514-32552021-03-0141112010.1049/nde2.12003Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowiresMinhao Yang0Zhi‐Yong Xue1Zhi‐Min Dang2Yang Shen3Paul Haghi‐Ashtiani4Delong He5Jian Xu6Jinbo Bai7Institute of Advanced Materials North China Electric Power University Beijing ChinaInstitute of Advanced Materials North China Electric Power University Beijing ChinaDepartment of Electrical Engineering State Key Laboratory of Power System Tsinghua University Beijing ChinaSchool of Materials Science and Engineering State Key Lab of New Ceramics and Fine Processing Tsinghua University Beijing ChinaLaboratoire de Mécanique des Sols Structures et Matériaux CNRS UMR 8579, Centrale‐Supélec Université Paris‐Saclay Gif‐sur‐Yvette FranceLaboratoire de Mécanique des Sols Structures et Matériaux CNRS UMR 8579, Centrale‐Supélec Université Paris‐Saclay Gif‐sur‐Yvette FranceInstitute of Low‐Dimensional Materials Genome Initiative College of Chemistry and Environmental Engineering Shenzhen University Shenzhen Guangdong ChinaLaboratoire de Mécanique des Sols Structures et Matériaux CNRS UMR 8579, Centrale‐Supélec Université Paris‐Saclay Gif‐sur‐Yvette FranceAbstract The synthesis of core@double‐shells structured TiO2@C@SiO2 nanowires (NWs) with variable thickness of carbon inner shell and SiO2 outer shell was achieved by individually controlling the chemical vapour deposition time and amount of silicon precursor added in the sol–gel synthesis. The resultant TiO2@C@SiO2 NWs filled nanocomposites exhibited an excellent dielectric performance with simultaneously improved dielectric constant and suppressed dielectric loss, which could be further regulated by individually controlling the carbon inner shell and SiO2 outer shell thickness. More importantly, the influences of the conductive carbon inner shell and insulated SiO2 outer shell thickness on the dielectric performance of nanocomposites were clearly revealed. The increase of the conductive carbon inner shell thickness would lead to an increase in dielectric constant and loss of nanocomposites, while the insulated SiO2 outer shell exhibited a totally opposite law that the dielectric constant and loss of nanocomposites decrease with increasing SiO2 outer shell thickness. Numerical simulations were also carried out to theoretically verify the relationship between the dielectric loss and SiO2 outer shell thickness. This promising controllable multi‐shell structure could be extended to a variety of hybrids to develop high‐performance dielectric nanocomposites.https://doi.org/10.1049/nde2.12003 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Minhao Yang Zhi‐Yong Xue Zhi‐Min Dang Yang Shen Paul Haghi‐Ashtiani Delong He Jian Xu Jinbo Bai |
spellingShingle |
Minhao Yang Zhi‐Yong Xue Zhi‐Min Dang Yang Shen Paul Haghi‐Ashtiani Delong He Jian Xu Jinbo Bai Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires IET Nanodielectrics |
author_facet |
Minhao Yang Zhi‐Yong Xue Zhi‐Min Dang Yang Shen Paul Haghi‐Ashtiani Delong He Jian Xu Jinbo Bai |
author_sort |
Minhao Yang |
title |
Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires |
title_short |
Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires |
title_full |
Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires |
title_fullStr |
Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires |
title_full_unstemmed |
Regulating dielectric performances of Poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of Core@Double‐Shells structured nanowires |
title_sort |
regulating dielectric performances of poly(vinylidene fluoride) nanocomposites by individually controlling shell thickness of core@double‐shells structured nanowires |
publisher |
Wiley |
series |
IET Nanodielectrics |
issn |
2514-3255 |
publishDate |
2021-03-01 |
description |
Abstract The synthesis of core@double‐shells structured TiO2@C@SiO2 nanowires (NWs) with variable thickness of carbon inner shell and SiO2 outer shell was achieved by individually controlling the chemical vapour deposition time and amount of silicon precursor added in the sol–gel synthesis. The resultant TiO2@C@SiO2 NWs filled nanocomposites exhibited an excellent dielectric performance with simultaneously improved dielectric constant and suppressed dielectric loss, which could be further regulated by individually controlling the carbon inner shell and SiO2 outer shell thickness. More importantly, the influences of the conductive carbon inner shell and insulated SiO2 outer shell thickness on the dielectric performance of nanocomposites were clearly revealed. The increase of the conductive carbon inner shell thickness would lead to an increase in dielectric constant and loss of nanocomposites, while the insulated SiO2 outer shell exhibited a totally opposite law that the dielectric constant and loss of nanocomposites decrease with increasing SiO2 outer shell thickness. Numerical simulations were also carried out to theoretically verify the relationship between the dielectric loss and SiO2 outer shell thickness. This promising controllable multi‐shell structure could be extended to a variety of hybrids to develop high‐performance dielectric nanocomposites. |
url |
https://doi.org/10.1049/nde2.12003 |
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