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Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler

Technological advancements and development of new materials may lead to the manufacture of sustainable energy-conducting devices used in the energy sector. This research attempts to fabricate novel electroconductive and mechanically stable nanocomposites via an electroless deposition (ELD) technique...

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Autores principales: Nadeem, QuratulAin, Fatima, Tasneem, Prinsen, Pepijn, ur Rehman, Aziz, Gill, Rohama, Mahmood, Rashid, Luque, Rafael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5456950/
https://www.ncbi.nlm.nih.gov/pubmed/28774110
http://dx.doi.org/10.3390/ma9120989
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author Nadeem, QuratulAin
Fatima, Tasneem
Prinsen, Pepijn
ur Rehman, Aziz
Gill, Rohama
Mahmood, Rashid
Luque, Rafael
author_facet Nadeem, QuratulAin
Fatima, Tasneem
Prinsen, Pepijn
ur Rehman, Aziz
Gill, Rohama
Mahmood, Rashid
Luque, Rafael
author_sort Nadeem, QuratulAin
collection PubMed
description Technological advancements and development of new materials may lead to the manufacture of sustainable energy-conducting devices used in the energy sector. This research attempts to fabricate novel electroconductive and mechanically stable nanocomposites via an electroless deposition (ELD) technique using electrically insulating materials. Metallic Cu is coated onto Al(2)O(3) by ELD, and the prepared filler is then integrated (2–14 wt %) into a matrix of polystyrene-block-poly(ethylene-ran-butylene)-block-polystyrene-graft-maleic anhydride (PS-b-(PE-r-B)-b-PS-g-MA). Considerable variations in composite phases with filler inclusion exist. The Cu crystallite growth onto Al(2)O(3) was evaluated by X-ray diffraction (XRD) analysis and energy dispersive spectrometry (EDS). Scanning electron microscopy (SEM) depicts a uniform Cu coating on Al(2)O(3), while homogeneous filler dispersion is exhibited in the case of composites. The electrical behavior of composites is enhanced drastically (7.7 × 10(−5) S/cm) upon incorporation of Cu–Al(2)O(3) into an insulating polymer matrix (4.4 × 10(−16) S/cm). Moreover, mechanical (Young’s modulus, tensile strength and % elongation at break) and thermal (thermogravimetric analysis (TGA), derivative thermogravimetry (DTG), and differential scanning calorimetry (DSC)) properties of the nanocomposites also improve substantially. These composites are likely to meet the demands of modern high-strength electroconductive devices.
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spelling pubmed-54569502017-07-28 Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler Nadeem, QuratulAin Fatima, Tasneem Prinsen, Pepijn ur Rehman, Aziz Gill, Rohama Mahmood, Rashid Luque, Rafael Materials (Basel) Article Technological advancements and development of new materials may lead to the manufacture of sustainable energy-conducting devices used in the energy sector. This research attempts to fabricate novel electroconductive and mechanically stable nanocomposites via an electroless deposition (ELD) technique using electrically insulating materials. Metallic Cu is coated onto Al(2)O(3) by ELD, and the prepared filler is then integrated (2–14 wt %) into a matrix of polystyrene-block-poly(ethylene-ran-butylene)-block-polystyrene-graft-maleic anhydride (PS-b-(PE-r-B)-b-PS-g-MA). Considerable variations in composite phases with filler inclusion exist. The Cu crystallite growth onto Al(2)O(3) was evaluated by X-ray diffraction (XRD) analysis and energy dispersive spectrometry (EDS). Scanning electron microscopy (SEM) depicts a uniform Cu coating on Al(2)O(3), while homogeneous filler dispersion is exhibited in the case of composites. The electrical behavior of composites is enhanced drastically (7.7 × 10(−5) S/cm) upon incorporation of Cu–Al(2)O(3) into an insulating polymer matrix (4.4 × 10(−16) S/cm). Moreover, mechanical (Young’s modulus, tensile strength and % elongation at break) and thermal (thermogravimetric analysis (TGA), derivative thermogravimetry (DTG), and differential scanning calorimetry (DSC)) properties of the nanocomposites also improve substantially. These composites are likely to meet the demands of modern high-strength electroconductive devices. MDPI 2016-12-07 /pmc/articles/PMC5456950/ /pubmed/28774110 http://dx.doi.org/10.3390/ma9120989 Text en © 2016 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
Nadeem, QuratulAin
Fatima, Tasneem
Prinsen, Pepijn
ur Rehman, Aziz
Gill, Rohama
Mahmood, Rashid
Luque, Rafael
Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title_full Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title_fullStr Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title_full_unstemmed Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title_short Electroconductive Composites from Polystyrene Block Copolymers and Cu–Alumina Filler
title_sort electroconductive composites from polystyrene block copolymers and cu–alumina filler
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5456950/
https://www.ncbi.nlm.nih.gov/pubmed/28774110
http://dx.doi.org/10.3390/ma9120989
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