Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers

Polymer nanocomposites have attracted significant research attention especially in the field of high voltage insulation. The enhancement in the dielectric properties of polymer nanocomposites is led by the unique interphase interactions between nanoparticles and base polymers. However, common single...

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Main Author: Azmi, Aizat
Format: Thesis
Language:English
Published: 2022
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Online Access:http://eprints.utm.my/id/eprint/102005/1/AizatAzmiPSKE2022.pdf
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spelling my-utm-ep.1020052023-07-25T10:18:01Z Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers 2022 Azmi, Aizat TK Electrical engineering. Electronics Nuclear engineering Polymer nanocomposites have attracted significant research attention especially in the field of high voltage insulation. The enhancement in the dielectric properties of polymer nanocomposites is led by the unique interphase interactions between nanoparticles and base polymers. However, common single metal oxide nanofillers, which are supposed to improve the dielectric properties of nanocomposites, often led to reduced electrical breakdown strength. Recently, multielement oxide nanofillers have been shown to possess favorable properties compared to single metal oxide nanofillers. Nevertheless, very few systematic studies have been carried out to determine the structure-dielectric property relationship of multi-element oxide nanofillers, especially when added to polypropylene (PP). In the current work, different types of multi-element oxide nanofillers, namely, untreated magnesium aluminate (MgAl2O4), untreated calcium carbonate (CaCO3), and surface-modified calcium carbonate (t-CaCO3), were added to PP to determine their effects on thermal, chemical, structural, and dielectric properties of PP, before and after aging. As such, thermogravimetric analysis, differential scanning calorimetry, Fourier transforms infrared, scanning electron microscopy, dielectric response, AC breakdown, and DC breakdown measurements were performed. The results demonstrated that PP nanocomposites containing MgAhO4 possessed up to 58% lowered breakdown strength than unfilled PP. Adding CaCO3 to PP resulted in up to 43% higher breakdown strength of the nanocomposites compared to PP/MgAhO4 nanocomposites. Notably, PP/t-CaCO3 nanocomposites possessed the highest breakdown strength (up to 45%) among the nanocomposite systems considered. While unfilled PP showed much reduced breakdown strength (up to 27%) after aging, all the nanocomposites demonstrated less detrimental effects on their breakdown strength (up to only 21%) compared to unfilled PP, and that the breakdown strength of PP nanocomposites was generally more predictable after aging. The structure-property relationship governing these dielectric changes is subsequently discussed. This paves the way for the development of future power cable insulation systems based on nanostructured PP technology. 2022 Thesis http://eprints.utm.my/id/eprint/102005/ http://eprints.utm.my/id/eprint/102005/1/AizatAzmiPSKE2022.pdf application/pdf en public http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:149277 phd doctoral Universiti Teknologi Malaysia, Faculty of Engineering - School of Electrical Engineering Faculty of Engineering - School of Electrical Engineering
institution Universiti Teknologi Malaysia
collection UTM Institutional Repository
language English
topic TK Electrical engineering
Electronics Nuclear engineering
spellingShingle TK Electrical engineering
Electronics Nuclear engineering
Azmi, Aizat
Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
description Polymer nanocomposites have attracted significant research attention especially in the field of high voltage insulation. The enhancement in the dielectric properties of polymer nanocomposites is led by the unique interphase interactions between nanoparticles and base polymers. However, common single metal oxide nanofillers, which are supposed to improve the dielectric properties of nanocomposites, often led to reduced electrical breakdown strength. Recently, multielement oxide nanofillers have been shown to possess favorable properties compared to single metal oxide nanofillers. Nevertheless, very few systematic studies have been carried out to determine the structure-dielectric property relationship of multi-element oxide nanofillers, especially when added to polypropylene (PP). In the current work, different types of multi-element oxide nanofillers, namely, untreated magnesium aluminate (MgAl2O4), untreated calcium carbonate (CaCO3), and surface-modified calcium carbonate (t-CaCO3), were added to PP to determine their effects on thermal, chemical, structural, and dielectric properties of PP, before and after aging. As such, thermogravimetric analysis, differential scanning calorimetry, Fourier transforms infrared, scanning electron microscopy, dielectric response, AC breakdown, and DC breakdown measurements were performed. The results demonstrated that PP nanocomposites containing MgAhO4 possessed up to 58% lowered breakdown strength than unfilled PP. Adding CaCO3 to PP resulted in up to 43% higher breakdown strength of the nanocomposites compared to PP/MgAhO4 nanocomposites. Notably, PP/t-CaCO3 nanocomposites possessed the highest breakdown strength (up to 45%) among the nanocomposite systems considered. While unfilled PP showed much reduced breakdown strength (up to 27%) after aging, all the nanocomposites demonstrated less detrimental effects on their breakdown strength (up to only 21%) compared to unfilled PP, and that the breakdown strength of PP nanocomposites was generally more predictable after aging. The structure-property relationship governing these dielectric changes is subsequently discussed. This paves the way for the development of future power cable insulation systems based on nanostructured PP technology.
format Thesis
qualification_name Doctor of Philosophy (PhD.)
qualification_level Doctorate
author Azmi, Aizat
author_facet Azmi, Aizat
author_sort Azmi, Aizat
title Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
title_short Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
title_full Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
title_fullStr Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
title_full_unstemmed Structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
title_sort structure and dielectric properties of polypropylene containing multi-element oxide nanofillers
granting_institution Universiti Teknologi Malaysia, Faculty of Engineering - School of Electrical Engineering
granting_department Faculty of Engineering - School of Electrical Engineering
publishDate 2022
url http://eprints.utm.my/id/eprint/102005/1/AizatAzmiPSKE2022.pdf
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