Effect of Carbon Nanofillers on the Microstructure and Electromechanical Properties of Electroactive Polymers

Effect of Carbon Nanofillers on the Microstructure and Electromechanical Properties of Electroactive Polymers
Author: Nirmal Sigamani
Publisher:
Total Pages:
Release: 2015
Genre:
ISBN:

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Both ionic and electronic electroactive polymers (EAPs) have displayed great potential as actuators. Current ionic EAPs have limited practical application due to their slow response time and their low blocked force; furthermore, their ion transport-based mechanism necessitates the presence of an electrolyte, which complicates issues of packaging and device lifetime. On the other hand, despite the advantages of electronic EAPs such as their efficient electromechanical coupling and relatively rapid response time, there are major obstacles blocking their transition to application as well; most notably, they require high actuation voltages (threshold voltage needed to generate electroactive strain) and they have low blocked stress (the stress at which the actuator stops moving). Hence, the main objective of this study was to develop a new kind of polymer nanocomposite for actuator applications that would exhibit simultaneous improvement in both electromechanical response and strain energy density. To fulfill this objective, existing PVDF-based electroactive polymers were modified using different types of carbon nanofillers. An effort was made to observe the impact of these nanofillers on the microstructure of the polymer that would then lead to a better understanding of the maximum possible improvement of the electromechanical response. As a first step, we investigated the impact of the 2-dimensional GO and reduced GO on the electromechanical response of PVDF, a polar polymer. The 1 wt % reduced-GO-PVDF nanocomposites showed a tremendous improvement in dielectric permittivity and electrical conductivity. The dielectric permittivity at 1 KHz increased almost eight fold, while the electrical conductivity showed an increase of four orders of magnitude in comparison to the corresponding values for the unmodified PVDF. The reduced GO-PVDF polymer films showed a bending actuation response with a DC electric field, thus demonstrating its potential as EAP. The mechanism responsible for this bending actuation response is determined to be electrostriction, because the strain (S11) exhibited a quadratic response with the applied electric field while Joule heating and Maxwell stress effects were shown to be negligible. The coefficient of electrostriction value (M1133) for the 1 wt % reduced GO-PVDF was found to be 1.7 x 10-16 (m2/V2), which is higher than that for most of the existing electrostrictive polymers like polyurethane and PVDF TrFE CTFE terpolymer, whose values lie in the range of 14 x 10-18 (m2/V2) to 8 x 10-18 (m2/V2). Although coefficient of electrostriction of reduced GO-PVDF is higher than most of the existing electroactive polymers, the relatively high electrical conductivity and low breakdown limits their use for practical applications. So next step was to exploit the advantages of a conductive carbon nanostructure while controlling its network to better impact its electrical properties which could also lead to higher breakdown strength. To achieve this, the impact of the hybridization between SWNT and GO on the microstructure and the electrical properties of PVDF was studied. Increasing the content of insulative GO helped to disrupt the percolated network of the SWNT, lowering the electrical conductivity and dielectric loss. The synergistic effect of the hybrid nanofillers on the microstructure of PVDF was then analyzed. The hybrid nanofillers had a favorable influence on crystallization, leading to a higher degree of crystallinity. Enhancement in the ferroelectric strain for the stretched nanocomposite was observed. Due to the hybridization of SWNT and GO and subsequent stretching, a high dielectric breakdown strength of 140 MV/m was found for a nanocomposite with a 0.25 wt % SWNT and 0.25 wt % GO compared to 0.6 MV/m for 0.25wt% SWNT-PVDF.Based on the promising impact of hybrid nanofillers on the ferroelectric polymer PVDF, a similar polymer with a relaxor ferroelectric character is considered owing to its higher inherent electroactive response and higher breakdown strength. Given that it is not broadly studied, there was a need to understand structure-property relationship of the PVDF TrFE CTFE terpolymer. Hence, the effect of processing conditions (such as annealing times and isothermal crystallization temperatures) on the microstructure and the subsequent electromechanical properties were analyzed. This structure-property analysis helped to understand the relation between the different types of crystalline phases and the degrees of crystallinity as well as to observe crystal sizes as they relate to the electric field induced strain. It was found that a higher degree of crystallinity was required to achieve a higher strain; at the same time, if the average crystal sizes are high, then the crystals act as a hindrance to random dipole movement and thus detrimentally affect the electroactive strain. Next, with the better understanding about the structure-property of terpolymers, the effect of adding SWNTs was investigated. The dispersion of the SWNT terpolymer nanocomposites using both physical dispersion and chemical dispersion (APS modification) was studied. The APS modification helped to achieve a good dispersion in the nanocomposites, which delayed the percolation of the SWNT network, leading to a low dielectric loss and low electrical conductivity. The inclusion of SWNT-APS also changed the microstructure of terpolymers; these films showed a lower % crystallinity compared to that for pure terpolymer and low proportion of [alpha]-phase, especially at lower weight fractions of SWNT-APS. As a final step, the effect of the hybrid SWNT/GO on both microstructure and electromechanical properties of the terpolymer were studied. The hybrid nanofillers were chemically modified to form a covalent bond between them to improve their interaction. The morphology of the hybrid nanofillers after the chemical modification was studied for two different chemical modification routes: one using thionyl chloride, other using NHS and EDAC as catalysts. Of the two methods, the NHS and EDAC catalyst method showed a strong uniform interaction, confirmed by SEM images and FTIR results, with a shift in the peak to 1630 cm-1. Finally, the effect of hybrid SWNT and GO on the electromechanical properties were studied and, interestingly, the hybrid terpolymer nanocomposite film showed a lower electroactive strain compared to pure terpolymer at the same applied electric field. WAXS and DSC results suggest that this reduction is partly due to the change in the crystallinity and to the SWNT hindrance effect on the crystalline phase transformation which is responsible for the electroactive strain. In this dissertation, it was successfully shown that using hybrid SWNT-GO both high coefficient of electrostriction (increase by 60 %) and high breakdown strength (140 MV/m) can be achieved by exploiting the actuation capabilities of SWNT in PVDF while GO acted as insulative filler. Also, the type of the fillers in the nanocomposites route had a strong influence on the actuation mechanism of relaxor ferroelectric polymers. The microstructure-property study highlights the importance of choosing the right type of nanofillers for further advancement in the field of EAPs.

Elaboration, Characterization and Modeling of Electroactive Materials Based on Polyurethanes and Grafted Carbon Nanotubes

Elaboration, Characterization and Modeling of Electroactive Materials Based on Polyurethanes and Grafted Carbon Nanotubes
Author: Mohamed Hedi Jomaa
Publisher:
Total Pages: 169
Release: 2020
Genre:
ISBN:

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Harvesting systems capable of transforming dusty environmental energy into electrical energy have attracted considerable interest throughout the last decade. Several research efforts have focused on the transformation of the mechanical vibration into electrical energy. Most of these research activities deal with classical piezoelectric ceramic materials, but more recently, a promising new type of materials is represented by electroactive polymers (EAPs). Among the various EAPs, polyurethane (PU) elastomers are of great interest due to the significant electrical-field strains, and due to their attractive and useful properties such as flexibility, light weight, high chemical and abrasion resistance, high mechanical strength and easy processing to large area films as well as their ability to be molded into various shapes and biocompatibility with blood and tissues. In addition, it has recently been shown that the incorporation into a PU matrix of nanofillers, such as carbon nanotubes (CNTs), can greatly enhance the expected strain, or the harvested energy. However, it is well known that CNTs are hardly dispersed in a polymeric matrix, and that the interfacial adhesion strength is generally poor. An effective method to improves both dispersion and adhesion may consist in functionalizing CNTs by grafting polymer chains onto their surfaces. The main objective of this thesis was to develop high-efficiency polymers nanocomposites for harvesting energy and actuation. The key motivation was to use polymer-grafted CNTs to improve dispersion, interfacial adhesion in PU, and understand how this can change the electroactive properties of the PU/CNT nanocomposites. In other words, it was a pluridisciplinary project including an optimization of the elaboration process, physical characterizations ˗ including microstructural, electrical and mechanical behaviors in a wide range of frequencies and temperatures ˗ and the determination of the electroactive properties. A comprehensive study was then carried out first on pure PU to understand how their electroactive properties depend on their microstructure, and then on the nanocomposites to understand how the incorporation of functionalized CNT can improve the electromechanical properties.

Effect of Carbon Filler Characteristics on the Electrical Properties of Conductive Polymer Composites Possessing Segregated Network Microstructures

Effect of Carbon Filler Characteristics on the Electrical Properties of Conductive Polymer Composites Possessing Segregated Network Microstructures
Author: Laurissa Alia Prystaj
Publisher:
Total Pages:
Release: 2008
Genre: Carbon-black
ISBN:

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This thesis focused on making composites consisting of a polymethylmethacrylate matrix, with various carbon fillers. The fillers that were examined were 3 different carbon blacks: N-550, N-772 and pureblack, and short multi-wall carbon nano-tubes. The carbon fillers were coated onto the polymethylmethacrylate, and compression molded in order to form a segregated microstructure. The goal of this thesis is to compare the electrical and optical properties of the composites consisting of a segregated microstructure, containing various carbon fillers. Scanning electron microscopy was used to investigate the fracture surface of the composites. Impedance Spectroscopy measured the electrical response of the material, and was used to determine the conductivity and dielectric properties of the composites and estimate the percolation threshold. The multi-wall carbon nano-tubes were found to have the lowest percolation threshold, due to their rod like structure. All of the carbon black fillers displayed similar characteristics in their conductivity and dielectric properties. As the filler content increased, the conductivity and the dielectric constant of the composites increased.

Health Monitoring of Aerospace Structures

Health Monitoring of Aerospace Structures
Author: Wieslaw Staszewski
Publisher: John Wiley & Sons
Total Pages: 290
Release: 2004-02-13
Genre: Technology & Engineering
ISBN: 9780470843406

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Providing quality research for the reader, this title encompasses all the recent developments in smart sensor technology for health monitoring in aerospace structures, providing a valuable introduction to damage detection techniques. Focussing on engineering applications, all chapters are written by smart structures and materials experts from aerospace manufacturers and research/academic institutions. This key reference: Discusses the most important aspects related to smart technologies for damage detection; this includes not only monitoring techniques but also aspects related to specifications, design parameters, assessment and qualification routes. Presents real case studies and applications; this includes in-flight tests; the work presented goes far beyond academic research applications. Displays a balance between theoretical developments and engineering applications

Composite Materials

Composite Materials
Author: Kamal K. Kar
Publisher: Springer
Total Pages: 694
Release: 2016-10-14
Genre: Technology & Engineering
ISBN: 3662495147

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Composite materials are used as substitutions of metals/traditional materials in aerospace, automotive, civil, mechanical and other industries. The present book collects the current knowledge and recent developments in the characterization and application of composite materials. To this purpose the volume describes the outstanding properties of this class of advanced material which recommend it for various industrial applications.

Biopolymer Composites in Electronics

Biopolymer Composites in Electronics
Author: Kishor Kumar Sadasivuni
Publisher: Elsevier
Total Pages: 546
Release: 2016-09-10
Genre: Science
ISBN: 0081009747

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Biopolymer Composites in Electronics examines the current state-of-the-art in the electronic application based on biopolymer composites. Covering the synthesis, dispersion of fillers, characterization and fabrication of the composite materials, the book will help materials scientists and engineers address the challenges posed by the increased use of biopolymeric materials in electronic applications. The influence of preparation techniques on the generation of micro, meso, and nanoscale fillers, and the effect of filler size and dispersion on various biopolymers are discussed in detail. Applications covered include sensors, actuators, optics, fuel cells, photovoltaics, dielectrics, electromagnetic shielding, piezoelectrics, flexible displays, and microwave absorbers. In addition, characterization techniques are discussed and compared, enabling scientists and engineers to make the correct choice of technique. This book is a ‘one-stop’ reference for researchers, covering the entire state-of-the-art in biopolymer electronics. Written by a collection of expert worldwide contributors from industry, academia, government, and private research institutions, it is an outstanding reference for researchers in the field of biopolymer composites for advanced technologies. Enables researchers to keep up with the rapid development of biopolymer electronics, which offer light, flexible, and more cost-effective alternatives to conventional materials of solar cells, light-emitting diodes, and transistors Includes thorough coverage of the physics and chemistry behind biopolymer composites, helping readers to become rapidly acquainted with the fiel Provides in-depth information on the range of biopolymer applications in electronics, from printed flexible conductors and novel semiconductor components, to intelligent labels, large area displays, and solar panels

Biodegradable and Biocompatible Polymer Composites

Biodegradable and Biocompatible Polymer Composites
Author: Navinchandra Gopal Shimpi
Publisher: Woodhead Publishing
Total Pages: 460
Release: 2017-09-18
Genre: Technology & Engineering
ISBN: 0081010583

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Biodegradable and Biocompatible Polymer Composites: Processing, Properties and Applications begins by discussing the current state-of-the-art, new challenges and opportunities for various biodegradable and biocompatible polymer composite systems. Interfacial characterization of composites and the structure-property relationships in various composite systems are explained in detail via a theoretical model. Processing techniques for various macro and nanocomposite systems and the influence of processing parameters on properties of the composite are also reviewed in detail. The characterization of microstructure, elastic, visco-elastic, static and dynamic mechanical, thermal, rheological, optical, and electrical properties are highlighted, as are a broad range of applications. The book is a useful reference resource for both researchers and engineers working in composites materials science, biotechnology and nanotechnology, and is also useful for students attending chemistry, physics, and materials science and engineering courses. Presents recent outcomes and highlights the going importance of biodegradable and biocompatible polymer composites and their impact on the environment Analyzes all the main processing techniques, characterization and applications of biodegradable composites Written by leading international experts working in the field of biodegradable and biocompatible polymer composites Covers a broad range of application fields, including medical and pharmaceutical, agricultural, packaging and transport

Carbon-Based Smart Materials

Carbon-Based Smart Materials
Author: Constantinos A. Charitidis
Publisher: Walter de Gruyter GmbH & Co KG
Total Pages: 194
Release: 2020-04-20
Genre: Technology & Engineering
ISBN: 3110479133

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Presents technologies and key concepts to produce suitable smart materials and intelligent structures for sensing, information and communication technology, biomedical applications (drug delivery, hyperthermia therapy), self-healing, flexible memories and construction technologies. Novel developments of environmental friendly, cost-effective and scalable production processes are discussed by experts in the field.

Carbon Nanotube-Polymer Composites

Carbon Nanotube-Polymer Composites
Author: Dimitrios Tasis
Publisher: Royal Society of Chemistry
Total Pages: 293
Release: 2015-11-09
Genre: Technology & Engineering
ISBN: 1782625828

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Chemically-modified carbon nanotubes (CNTs) exhibit a wide range of physical and chemical properties which makes them an attractive starting material for the preparation of super-strong and highly-conductive fibres and films. Much information is available across the primary literature, making it difficult to obtain an overall picture of the state-of-the-art. This volume brings together some of the leading researchers in the field from across the globe to present the potential these materials have, not only in developing and characterising novel materials but also the devices which can be fabricated from them. Topics featured in the book include Raman characterisation, industrial polymer materials, actuators and sensors and polymer reinforcement, with chapters prepared by highly-cited authors from across the globe. A valuable handbook for any academic or industrial laboratory, this book will appeal to newcomers to the field and established researchers alike.