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Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films

Core–double-shell-structured nanocomposite films consisting of polyvinylidene fluoride-grafted-barium titanate (PVDF-g-BT) incorporated into a P(VDF-co-hexafluoropropylene (HFP)) copolymer matrix were produced via a solution mixing method for energy storage applications. The resulting films were tho...

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Autores principales: Bouharras, Fatima Ezzahra, Atlas, Salima, Capaccioli, Simone, Labardi, Massimiliano, Hajlane, Abdelghani, Ameduri, Bruno, Raihane, Mustapha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10383315/
https://www.ncbi.nlm.nih.gov/pubmed/37514515
http://dx.doi.org/10.3390/polym15143126
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author Bouharras, Fatima Ezzahra
Atlas, Salima
Capaccioli, Simone
Labardi, Massimiliano
Hajlane, Abdelghani
Ameduri, Bruno
Raihane, Mustapha
author_facet Bouharras, Fatima Ezzahra
Atlas, Salima
Capaccioli, Simone
Labardi, Massimiliano
Hajlane, Abdelghani
Ameduri, Bruno
Raihane, Mustapha
author_sort Bouharras, Fatima Ezzahra
collection PubMed
description Core–double-shell-structured nanocomposite films consisting of polyvinylidene fluoride-grafted-barium titanate (PVDF-g-BT) incorporated into a P(VDF-co-hexafluoropropylene (HFP)) copolymer matrix were produced via a solution mixing method for energy storage applications. The resulting films were thoroughly investigated via spectroscopic, thermal, and morphological analyses. Thermogravimetric data provided an enhancement of the thermal stability, while differential scanning calorimetry indicated an increase in the crystallinity of the films after the addition of PVDF-g-BT. Moreover, broadband dielectric spectroscopy revealed three dielectric processes, namely, glass–rubber relaxation (α(a)), relaxation associated with the polymer crystalline phase (α(c)), and slower relaxation in the nanocomposites resulting from the accumulation of charge on the interface between the PVDF-g-BT filler and the P(VDF-co-HFP) matrix. The dependence of the dielectric constant from the composition was analyzed, and we found that the highest permittivity enhancement was obtained by the highest concentration filler added to the largest concentration of P(VDF-co-HFP). Mechanical analysis revealed an improvement in Young’s modulus for all nanocomposites versus pristine P(VDF-co-HFP), confirming the uniformity of the distribution of the PVDF-g-BT nanocomposite with a strong interaction with the copolymer matrix, as also evidenced via scanning electron microscopy. The suggested system is promising for use in high-energy-density storage devices as supercapacitors.
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spelling pubmed-103833152023-07-30 Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films Bouharras, Fatima Ezzahra Atlas, Salima Capaccioli, Simone Labardi, Massimiliano Hajlane, Abdelghani Ameduri, Bruno Raihane, Mustapha Polymers (Basel) Article Core–double-shell-structured nanocomposite films consisting of polyvinylidene fluoride-grafted-barium titanate (PVDF-g-BT) incorporated into a P(VDF-co-hexafluoropropylene (HFP)) copolymer matrix were produced via a solution mixing method for energy storage applications. The resulting films were thoroughly investigated via spectroscopic, thermal, and morphological analyses. Thermogravimetric data provided an enhancement of the thermal stability, while differential scanning calorimetry indicated an increase in the crystallinity of the films after the addition of PVDF-g-BT. Moreover, broadband dielectric spectroscopy revealed three dielectric processes, namely, glass–rubber relaxation (α(a)), relaxation associated with the polymer crystalline phase (α(c)), and slower relaxation in the nanocomposites resulting from the accumulation of charge on the interface between the PVDF-g-BT filler and the P(VDF-co-HFP) matrix. The dependence of the dielectric constant from the composition was analyzed, and we found that the highest permittivity enhancement was obtained by the highest concentration filler added to the largest concentration of P(VDF-co-HFP). Mechanical analysis revealed an improvement in Young’s modulus for all nanocomposites versus pristine P(VDF-co-HFP), confirming the uniformity of the distribution of the PVDF-g-BT nanocomposite with a strong interaction with the copolymer matrix, as also evidenced via scanning electron microscopy. The suggested system is promising for use in high-energy-density storage devices as supercapacitors. MDPI 2023-07-22 /pmc/articles/PMC10383315/ /pubmed/37514515 http://dx.doi.org/10.3390/polym15143126 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bouharras, Fatima Ezzahra
Atlas, Salima
Capaccioli, Simone
Labardi, Massimiliano
Hajlane, Abdelghani
Ameduri, Bruno
Raihane, Mustapha
Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title_full Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title_fullStr Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title_full_unstemmed Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title_short Synthesis and Characterization of Core–Double-Shell-Structured PVDF-grafted-BaTiO(3)/P(VDF-co-HFP) Nanocomposite Films
title_sort synthesis and characterization of core–double-shell-structured pvdf-grafted-batio(3)/p(vdf-co-hfp) nanocomposite films
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10383315/
https://www.ncbi.nlm.nih.gov/pubmed/37514515
http://dx.doi.org/10.3390/polym15143126
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