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Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites

Five types of nanofillers, namely, silica, surface-silylated silica, alumina, surface-silylated alumina, and boron nitride, were tested in this study. Nanocomposites composed of an epoxy/amine resin and one of the five types of nanoparticles were tested as dielectrics with a focus on (i) the surface...

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Autores principales: Marx, Philipp, Wanner, Andrea J., Zhang, Zucong, Jin, Huifei, Tsekmes, Ioannis-Alexandros, Smit, Johan J., Kern, Wolfgang, Wiesbrock, Frank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6431941/
https://www.ncbi.nlm.nih.gov/pubmed/30970872
http://dx.doi.org/10.3390/polym9060195
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author Marx, Philipp
Wanner, Andrea J.
Zhang, Zucong
Jin, Huifei
Tsekmes, Ioannis-Alexandros
Smit, Johan J.
Kern, Wolfgang
Wiesbrock, Frank
author_facet Marx, Philipp
Wanner, Andrea J.
Zhang, Zucong
Jin, Huifei
Tsekmes, Ioannis-Alexandros
Smit, Johan J.
Kern, Wolfgang
Wiesbrock, Frank
author_sort Marx, Philipp
collection PubMed
description Five types of nanofillers, namely, silica, surface-silylated silica, alumina, surface-silylated alumina, and boron nitride, were tested in this study. Nanocomposites composed of an epoxy/amine resin and one of the five types of nanoparticles were tested as dielectrics with a focus on (i) the surface functionalization of the nanoparticles and (ii) the water absorption by the materials. The dispersability of the nanoparticles in the resin correlated with the composition (OH content) of their surfaces. The interfacial polarization of the thoroughly dried samples was found to increase at lowered frequencies and increased temperatures. The β relaxation, unlike the interfacial polarization, was not significantly increased at elevated temperatures (below the glass-transition temperature). Upon the absorption of water under ambient conditions, the interfacial polarization increased significantly, and the insulating properties decreased or even deteriorated. This effect was most pronounced in the nanocomposite containing silica, and occurred as well in the nanocomposites containing silylated silica or non-functionalized alumina. The alternating current (AC) breakdown strength of all specimens was in the range of 30 to 35 kV·mm(−1). In direct current (DC) breakdown tests, the epoxy resin exhibited the lowest strength of 110 kV·mm(−1); the nanocomposite containing surface-silylated alumina had a strength of 170 kV·mm(−1). In summary, water absorption had the most relevant impact on the dielectric properties of nanocomposites containing nanoparticles, the surfaces of which interacted with the water molecules. Nanocomposites containing silylated alumina particles or boron nitride showed the best dielectric properties in this study.
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spelling pubmed-64319412019-04-02 Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites Marx, Philipp Wanner, Andrea J. Zhang, Zucong Jin, Huifei Tsekmes, Ioannis-Alexandros Smit, Johan J. Kern, Wolfgang Wiesbrock, Frank Polymers (Basel) Article Five types of nanofillers, namely, silica, surface-silylated silica, alumina, surface-silylated alumina, and boron nitride, were tested in this study. Nanocomposites composed of an epoxy/amine resin and one of the five types of nanoparticles were tested as dielectrics with a focus on (i) the surface functionalization of the nanoparticles and (ii) the water absorption by the materials. The dispersability of the nanoparticles in the resin correlated with the composition (OH content) of their surfaces. The interfacial polarization of the thoroughly dried samples was found to increase at lowered frequencies and increased temperatures. The β relaxation, unlike the interfacial polarization, was not significantly increased at elevated temperatures (below the glass-transition temperature). Upon the absorption of water under ambient conditions, the interfacial polarization increased significantly, and the insulating properties decreased or even deteriorated. This effect was most pronounced in the nanocomposite containing silica, and occurred as well in the nanocomposites containing silylated silica or non-functionalized alumina. The alternating current (AC) breakdown strength of all specimens was in the range of 30 to 35 kV·mm(−1). In direct current (DC) breakdown tests, the epoxy resin exhibited the lowest strength of 110 kV·mm(−1); the nanocomposite containing surface-silylated alumina had a strength of 170 kV·mm(−1). In summary, water absorption had the most relevant impact on the dielectric properties of nanocomposites containing nanoparticles, the surfaces of which interacted with the water molecules. Nanocomposites containing silylated alumina particles or boron nitride showed the best dielectric properties in this study. MDPI 2017-05-28 /pmc/articles/PMC6431941/ /pubmed/30970872 http://dx.doi.org/10.3390/polym9060195 Text en © 2017 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Marx, Philipp
Wanner, Andrea J.
Zhang, Zucong
Jin, Huifei
Tsekmes, Ioannis-Alexandros
Smit, Johan J.
Kern, Wolfgang
Wiesbrock, Frank
Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title_full Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title_fullStr Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title_full_unstemmed Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title_short Effect of Interfacial Polarization and Water Absorption on the Dielectric Properties of Epoxy-Nanocomposites
title_sort effect of interfacial polarization and water absorption on the dielectric properties of epoxy-nanocomposites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6431941/
https://www.ncbi.nlm.nih.gov/pubmed/30970872
http://dx.doi.org/10.3390/polym9060195
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