Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers

Dielectric properties of two series of magnetoactive elastomers (MAEs) based on a soft silicone matrix containing 35 vol% of magnetic particles were studied experimentally in a wide temperature range. In the first series, a hybrid filler representing a mixture of magnetically hard NdFeB particles of...

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Main Authors: Vitaliy G. Shevchenko, Gennady V. Stepanov, Elena Yu. Kramarenko
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/12/2002
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spelling doaj-98f487c8bf9843ebb7957b77a1981a992021-07-01T00:33:59ZengMDPI AGPolymers2073-43602021-06-01132002200210.3390/polym13122002Dielectric Spectroscopy of Hybrid Magnetoactive ElastomersVitaliy G. Shevchenko0Gennady V. Stepanov1Elena Yu. Kramarenko2Enikilopov Institute of Synthetic Polymeric Materials of Russian Academy of Sciences (ISPM RAS), 117393 Moscow, RussiaState Scientific Center of the Russian Federation, Institute of Chemistry and Technology of Organoelement Compounds, 111123 Moscow, RussiaFaculty of Physics, Lomonosov Moscow State University, 119991 Moscow, RussiaDielectric properties of two series of magnetoactive elastomers (MAEs) based on a soft silicone matrix containing 35 vol% of magnetic particles were studied experimentally in a wide temperature range. In the first series, a hybrid filler representing a mixture of magnetically hard NdFeB particles of irregular shape and an average size of 50 μm and magnetically soft carbonyl iron (CI) of 4.5 μm in diameter was used for MAE fabrication. MAEs of the second series contained only NdFeB particles. The presence of magnetically hard NdFeB filler made it possible to passively control MAE dielectric response by magnetizing the samples. It was shown that although the hopping mechanism of MAEs conductivity did not change upon magnetization, a significant component of DC conductivity appeared in the magnetized MAEs presumably due to denser clustering of interacting particles resulting in decreasing interparticle distances. The transition from a non-conducting to a conducting state was more pronounced for hybrid MAEs containing both NdFeB and Fe particles with a tenfold size mismatch. Hybrid MAEs also demonstrated a considerable increase in the real part of the complex relative permittivity upon magnetization and its asymmetric behavior in external magnetic fields of various directions. The effects of magnetic filler composition and magnetization field on the dielectric properties of MAEs are important for practical applications of MAEs as elements with a tunable dielectric response.https://www.mdpi.com/2073-4360/13/12/2002magnetoactive elastomersmagnetic elastomersmagnetically hard particlesmagnetodielectric effectdielectric constant
collection DOAJ
language English
format Article
sources DOAJ
author Vitaliy G. Shevchenko
Gennady V. Stepanov
Elena Yu. Kramarenko
spellingShingle Vitaliy G. Shevchenko
Gennady V. Stepanov
Elena Yu. Kramarenko
Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
Polymers
magnetoactive elastomers
magnetic elastomers
magnetically hard particles
magnetodielectric effect
dielectric constant
author_facet Vitaliy G. Shevchenko
Gennady V. Stepanov
Elena Yu. Kramarenko
author_sort Vitaliy G. Shevchenko
title Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
title_short Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
title_full Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
title_fullStr Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
title_full_unstemmed Dielectric Spectroscopy of Hybrid Magnetoactive Elastomers
title_sort dielectric spectroscopy of hybrid magnetoactive elastomers
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-06-01
description Dielectric properties of two series of magnetoactive elastomers (MAEs) based on a soft silicone matrix containing 35 vol% of magnetic particles were studied experimentally in a wide temperature range. In the first series, a hybrid filler representing a mixture of magnetically hard NdFeB particles of irregular shape and an average size of 50 μm and magnetically soft carbonyl iron (CI) of 4.5 μm in diameter was used for MAE fabrication. MAEs of the second series contained only NdFeB particles. The presence of magnetically hard NdFeB filler made it possible to passively control MAE dielectric response by magnetizing the samples. It was shown that although the hopping mechanism of MAEs conductivity did not change upon magnetization, a significant component of DC conductivity appeared in the magnetized MAEs presumably due to denser clustering of interacting particles resulting in decreasing interparticle distances. The transition from a non-conducting to a conducting state was more pronounced for hybrid MAEs containing both NdFeB and Fe particles with a tenfold size mismatch. Hybrid MAEs also demonstrated a considerable increase in the real part of the complex relative permittivity upon magnetization and its asymmetric behavior in external magnetic fields of various directions. The effects of magnetic filler composition and magnetization field on the dielectric properties of MAEs are important for practical applications of MAEs as elements with a tunable dielectric response.
topic magnetoactive elastomers
magnetic elastomers
magnetically hard particles
magnetodielectric effect
dielectric constant
url https://www.mdpi.com/2073-4360/13/12/2002
work_keys_str_mv AT vitaliygshevchenko dielectricspectroscopyofhybridmagnetoactiveelastomers
AT gennadyvstepanov dielectricspectroscopyofhybridmagnetoactiveelastomers
AT elenayukramarenko dielectricspectroscopyofhybridmagnetoactiveelastomers
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