Dataset for Dielectric Breakdown Strength and Electrical Conductivity of Low Density Polyethylene Octylnanosilica Composite
Dataset for Dielectric Breakdown Strength and Electrical Conductivity of Low Density Polyethylene Octylnanosilica Composite
One challenge in studying nanodielectric composites is to produce reliable, reproducible samples. A common strategy to suppress aggregation and make the particles more compatible with the polymer matrix is to modify the nanoparticle surface chemistry but, often, evaluation of the effectiveness of the chosen surface functionalization process can prove difficult. In this paper the emphasis is on feasible ways to monitor the production of silane coupled nanosilica low density polyethylene (LDPE) composites, using Fourier transform infrared spectroscopy (FTIR) and thermal gravimetric analysis (TGA). The AC-breakdown properties of the resulting composites is studied and the field dependency of the DC-conductivity is measured and also calculated using a space charge limited conduction (SCLC) model together with densities of states obtained from ab initio calculations. For composites containing 13 wt% of nanosilica, breakdown strengths some 18 % higher than that of the unfilled LDPE were obtained. However, the results are not stable over time. This appears to be related to how extensively the composite is dried at elevated temperatures under vacuum.
polymer nanocomposite, nanosilica, nanodielectrics, solvent blending
University of Southampton
Virtanen, Suvi
5f98459d-e6b8-45d4-bdf8-85d264b3f43a
Vaughan, Alun
6d813b66-17f9-4864-9763-25a6d659d8a3
Yang, Lupeng
3d3a7828-5cd9-4707-9f92-f34486a4c850
Saiz, Fernan
ae2b8d34-2da6-4edd-8162-7892a71614c7
Quirke, Nick
631f103a-1811-42c9-9b54-700284bcca0f
Virtanen, Suvi
5f98459d-e6b8-45d4-bdf8-85d264b3f43a
Vaughan, Alun
6d813b66-17f9-4864-9763-25a6d659d8a3
Yang, Lupeng
3d3a7828-5cd9-4707-9f92-f34486a4c850
Saiz, Fernan
ae2b8d34-2da6-4edd-8162-7892a71614c7
Quirke, Nick
631f103a-1811-42c9-9b54-700284bcca0f
Virtanen, Suvi, Vaughan, Alun, Yang, Lupeng, Saiz, Fernan and Quirke, Nick
(2016)
Dataset for Dielectric Breakdown Strength and Electrical Conductivity of Low Density Polyethylene Octylnanosilica Composite.
University of Southampton
doi:10.5258/SOTON/399852
[Dataset]
Abstract
One challenge in studying nanodielectric composites is to produce reliable, reproducible samples. A common strategy to suppress aggregation and make the particles more compatible with the polymer matrix is to modify the nanoparticle surface chemistry but, often, evaluation of the effectiveness of the chosen surface functionalization process can prove difficult. In this paper the emphasis is on feasible ways to monitor the production of silane coupled nanosilica low density polyethylene (LDPE) composites, using Fourier transform infrared spectroscopy (FTIR) and thermal gravimetric analysis (TGA). The AC-breakdown properties of the resulting composites is studied and the field dependency of the DC-conductivity is measured and also calculated using a space charge limited conduction (SCLC) model together with densities of states obtained from ab initio calculations. For composites containing 13 wt% of nanosilica, breakdown strengths some 18 % higher than that of the unfilled LDPE were obtained. However, the results are not stable over time. This appears to be related to how extensively the composite is dried at elevated temperatures under vacuum.
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data.xlsx
- Dataset
Text
Readmefile.docx
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Published date: 2016
Keywords:
polymer nanocomposite, nanosilica, nanodielectrics, solvent blending
Organisations:
EEE
Projects:
POLYMAT
Funded by: UNSPECIFIED (EP/N002199/1)
September 2015 to August 2018
Identifiers
Local EPrints ID: 399852
URI: http://eprints.soton.ac.uk/id/eprint/399852
PURE UUID: 422229ea-2e52-43c9-8ea8-4f61b5ce926d
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Date deposited: 01 Sep 2016 15:21
Last modified: 20 Jan 2024 02:39
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Contributors
Creator:
Suvi Virtanen
Creator:
Alun Vaughan
Creator:
Lupeng Yang
Creator:
Fernan Saiz
Creator:
Nick Quirke
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