Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers

Abstract The article reports about electric field-induced alignment of the carbon nanoparticles embedded in epoxy matrix. Optical microscopy was performed to consider the effect of the electric field magnitude and configuration, filler morphology, and aspect ratio on alignment process. Characteristi...

Full description

Bibliographic Details
Main Authors: Olena Yakovenko, Ludmila Matzui, Ganna Danylova, Victor Zadorozhnii, Ludmila Vovchenko, Yulia Perets, Oleksandra Lazarenko
Format: Article
Language:English
Published: SpringerOpen 2017-07-01
Series:Nanoscale Research Letters
Subjects:
Online Access:http://link.springer.com/article/10.1186/s11671-017-2244-0
id doaj-7cc6d902893a4159b7cd3282040b256b
record_format Article
spelling doaj-7cc6d902893a4159b7cd3282040b256b2020-11-25T00:27:51ZengSpringerOpenNanoscale Research Letters1931-75731556-276X2017-07-0112111110.1186/s11671-017-2244-0Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon FillersOlena Yakovenko0Ludmila Matzui1Ganna Danylova2Victor Zadorozhnii3Ludmila Vovchenko4Yulia Perets5Oleksandra Lazarenko6Physics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivPhysics Department, Taras Shevchenko National University of KyivAbstract The article reports about electric field-induced alignment of the carbon nanoparticles embedded in epoxy matrix. Optical microscopy was performed to consider the effect of the electric field magnitude and configuration, filler morphology, and aspect ratio on alignment process. Characteristic time of aligned network formation was compared with modeling predictions. Carbon nanotube and graphite nanoplatelet rotation time was estimated using an analytical model based on effective medium approach. Different depolarization factor was applied according to the geometries of the particle and electric field. Solid nanocomposites were fabricated by using AC electric field. We have investigated concentration dependence of electrical conductivity of graphite nanoplatelets/epoxy composites using two-probe technique. It was established that the electrical properties of composites with random and aligned filler distribution are differ by conductivity value at certain filler content and distinguish by a form of concentration dependence of conductivity for fillers with different morphology. These differences were explained in terms of the dynamic percolation and formation of various conductive networks: chained in case of graphite nanoplatelets and crossed framework in case of carbon nanotubes filler.http://link.springer.com/article/10.1186/s11671-017-2244-0CompositesCarbon nanotubesGraphite nanoplateletsElectric field-induced alignmentDepolarization factorElectric conductivity
collection DOAJ
language English
format Article
sources DOAJ
author Olena Yakovenko
Ludmila Matzui
Ganna Danylova
Victor Zadorozhnii
Ludmila Vovchenko
Yulia Perets
Oleksandra Lazarenko
spellingShingle Olena Yakovenko
Ludmila Matzui
Ganna Danylova
Victor Zadorozhnii
Ludmila Vovchenko
Yulia Perets
Oleksandra Lazarenko
Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
Nanoscale Research Letters
Composites
Carbon nanotubes
Graphite nanoplatelets
Electric field-induced alignment
Depolarization factor
Electric conductivity
author_facet Olena Yakovenko
Ludmila Matzui
Ganna Danylova
Victor Zadorozhnii
Ludmila Vovchenko
Yulia Perets
Oleksandra Lazarenko
author_sort Olena Yakovenko
title Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
title_short Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
title_full Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
title_fullStr Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
title_full_unstemmed Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers
title_sort electrical properties of composite materials with electric field-assisted alignment of nanocarbon fillers
publisher SpringerOpen
series Nanoscale Research Letters
issn 1931-7573
1556-276X
publishDate 2017-07-01
description Abstract The article reports about electric field-induced alignment of the carbon nanoparticles embedded in epoxy matrix. Optical microscopy was performed to consider the effect of the electric field magnitude and configuration, filler morphology, and aspect ratio on alignment process. Characteristic time of aligned network formation was compared with modeling predictions. Carbon nanotube and graphite nanoplatelet rotation time was estimated using an analytical model based on effective medium approach. Different depolarization factor was applied according to the geometries of the particle and electric field. Solid nanocomposites were fabricated by using AC electric field. We have investigated concentration dependence of electrical conductivity of graphite nanoplatelets/epoxy composites using two-probe technique. It was established that the electrical properties of composites with random and aligned filler distribution are differ by conductivity value at certain filler content and distinguish by a form of concentration dependence of conductivity for fillers with different morphology. These differences were explained in terms of the dynamic percolation and formation of various conductive networks: chained in case of graphite nanoplatelets and crossed framework in case of carbon nanotubes filler.
topic Composites
Carbon nanotubes
Graphite nanoplatelets
Electric field-induced alignment
Depolarization factor
Electric conductivity
url http://link.springer.com/article/10.1186/s11671-017-2244-0
work_keys_str_mv AT olenayakovenko electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT ludmilamatzui electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT gannadanylova electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT victorzadorozhnii electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT ludmilavovchenko electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT yuliaperets electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
AT oleksandralazarenko electricalpropertiesofcompositematerialswithelectricfieldassistedalignmentofnanocarbonfillers
_version_ 1725338110430019584