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Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties

Electroactive polymers with high dielectric constants and low moduli can offer fast responses and large electromechanical strain under a relatively low electric field with regard to theoretical driving forces of electrostriction and electrostatic force. However, the conventional electroactive polyme...

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Autores principales: Kim, Il Jin, Cho, Kie Yong, Kim, Eunji, Kwon, Young Je, Shon, Min Young, Park, Bo-In, Yu, Seunggun, Lee, Jin Hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7822181/
https://www.ncbi.nlm.nih.gov/pubmed/33375191
http://dx.doi.org/10.3390/nano11010006
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author Kim, Il Jin
Cho, Kie Yong
Kim, Eunji
Kwon, Young Je
Shon, Min Young
Park, Bo-In
Yu, Seunggun
Lee, Jin Hong
author_facet Kim, Il Jin
Cho, Kie Yong
Kim, Eunji
Kwon, Young Je
Shon, Min Young
Park, Bo-In
Yu, Seunggun
Lee, Jin Hong
author_sort Kim, Il Jin
collection PubMed
description Electroactive polymers with high dielectric constants and low moduli can offer fast responses and large electromechanical strain under a relatively low electric field with regard to theoretical driving forces of electrostriction and electrostatic force. However, the conventional electroactive polymers, including silicone rubbers and acrylic polymers, have shown low dielectric constants (ca. < 4) because of their intrinsic limitation, although they have lower moduli (ca. < 1 MPa) than inorganics. To this end, we proposed the high dielectric PVDF terpolymer blends (PVTC-PTM) including poly(vinylidene fluoride-trifluoroethylene-chlorofluoro-ethylene) (P(VDF-TrFE-CFE), PVTC) as a matrix and micelle structured poly(3-hexylthiophene)-b-poly(methyl methacrylate) (P3HT-b-PMMA, PTM) as a conducting filler. The dielectric constant of PVTC-PTM dramatically increased up to 116.8 at 100 Hz despite adding only 2 wt% of the polymer-type filler (PTM). The compatibility and crystalline properties of the PVTC-PTM blends were examined by microscopic, thermal, and X-ray studies. The PVTC-PTM showed more compatible blends than those of the P3HT homopolymer filler (PT) and led to higher crystallinity and smaller crystal grain size relative to those of neat PVTC and PVTC with the PT filler (PVTC-PT). Those by the PVTC-PTM blends can beneficially affect the high-performance electromechanical properties compared to those by the neat PVTC and the PVTC-PT blend. The electromechanical strain of the PVTC-PTM with 2 wt% PTM (PVTC-PTM2) showed ca. 2-fold enhancement (0.44% transverse strain at 30 V(pp) μm(−1)) relative to that of PVTC. We found that the more significant electromechanical performance of the PVTC-PTM blend than the PVTC was predominantly due to the electrostrictive force rather than electrostatic force. We believe that the acquired PVTC-PTM blends are great candidates to achieve the high-performance electromechanical strain and take all benefits derived from the all-organic system, including high electrical breakdown strength, processibility, dielectrics, and large strain, which are largely different from the organic–inorganic hybrid nanocomposite systems.
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spelling pubmed-78221812021-01-23 Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties Kim, Il Jin Cho, Kie Yong Kim, Eunji Kwon, Young Je Shon, Min Young Park, Bo-In Yu, Seunggun Lee, Jin Hong Nanomaterials (Basel) Article Electroactive polymers with high dielectric constants and low moduli can offer fast responses and large electromechanical strain under a relatively low electric field with regard to theoretical driving forces of electrostriction and electrostatic force. However, the conventional electroactive polymers, including silicone rubbers and acrylic polymers, have shown low dielectric constants (ca. < 4) because of their intrinsic limitation, although they have lower moduli (ca. < 1 MPa) than inorganics. To this end, we proposed the high dielectric PVDF terpolymer blends (PVTC-PTM) including poly(vinylidene fluoride-trifluoroethylene-chlorofluoro-ethylene) (P(VDF-TrFE-CFE), PVTC) as a matrix and micelle structured poly(3-hexylthiophene)-b-poly(methyl methacrylate) (P3HT-b-PMMA, PTM) as a conducting filler. The dielectric constant of PVTC-PTM dramatically increased up to 116.8 at 100 Hz despite adding only 2 wt% of the polymer-type filler (PTM). The compatibility and crystalline properties of the PVTC-PTM blends were examined by microscopic, thermal, and X-ray studies. The PVTC-PTM showed more compatible blends than those of the P3HT homopolymer filler (PT) and led to higher crystallinity and smaller crystal grain size relative to those of neat PVTC and PVTC with the PT filler (PVTC-PT). Those by the PVTC-PTM blends can beneficially affect the high-performance electromechanical properties compared to those by the neat PVTC and the PVTC-PT blend. The electromechanical strain of the PVTC-PTM with 2 wt% PTM (PVTC-PTM2) showed ca. 2-fold enhancement (0.44% transverse strain at 30 V(pp) μm(−1)) relative to that of PVTC. We found that the more significant electromechanical performance of the PVTC-PTM blend than the PVTC was predominantly due to the electrostrictive force rather than electrostatic force. We believe that the acquired PVTC-PTM blends are great candidates to achieve the high-performance electromechanical strain and take all benefits derived from the all-organic system, including high electrical breakdown strength, processibility, dielectrics, and large strain, which are largely different from the organic–inorganic hybrid nanocomposite systems. MDPI 2020-12-22 /pmc/articles/PMC7822181/ /pubmed/33375191 http://dx.doi.org/10.3390/nano11010006 Text en © 2020 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
Kim, Il Jin
Cho, Kie Yong
Kim, Eunji
Kwon, Young Je
Shon, Min Young
Park, Bo-In
Yu, Seunggun
Lee, Jin Hong
Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title_full Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title_fullStr Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title_full_unstemmed Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title_short Development of High Dielectric Electrostrictive PVDF Terpolymer Blends for Enhanced Electromechanical Properties
title_sort development of high dielectric electrostrictive pvdf terpolymer blends for enhanced electromechanical properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7822181/
https://www.ncbi.nlm.nih.gov/pubmed/33375191
http://dx.doi.org/10.3390/nano11010006
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