This research studied the comprehensive dielectric properties of copper (Cu)/polyethylene terephthalate (PET) and copper/polytetrafluoroethylene (PTFE) composite films under the influence of copper nanoparticle (CuNP) sputtering time. Copper thin film was grown on flexible PET and PTFE using the ion beam sputtering technique. X-ray diffraction confirmed that CuNPs had been successfully synthesized on the polymer substrate. The electrical conductivity σ AC of the films was measured using alternating-current conductivity impedance in the frequency range of 102–106 Hz. It increased from 1.2 × 10−6 S/cm for PET to 9.65 × 10−7 S/cm for 75 min copper/PET and from 6.38 × 10−7 S/cm for PTFE to 9.24 × 10−7 S/cm for 75 min copper/PTFE. The dielectric constant ϵ′ increased from 0.62 for pristine PET to 1.19 for 25 min copper/PET and from 1.88 for pristine PTFE to 2.25 for 25 min copper/PTFE at an applied frequency of 105 Hz. In addition, other parameters – namely, dielectric loss ϵ″, dielectric modulus m and dielectric tangent constant tan δ – were investigated. The comprehensive results showed that the dielectric properties of flexible PET and PTFE polymers improved due to the deposited conductive CuNPs. Flexible copper/PET and copper/PTFE composite films are promising as dielectric substrates for modern electronic applications that can resist hard environments and have long lifetimes.
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1 February 2021
Research Article|
June 24 2020
Enhanced dielectric properties of flexible Cu/polymer nanocomposite films
Ali Atta
Physics Department, College of Science, Jouf University, Sakaka, Saudi Arabia; Radiation Physics Department, National Center for Radiation Research and Technology, Atomic Energy Authority, Cairo, Egypt
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Publisher: Emerald Publishing
Received:
April 04 2020
Accepted:
June 01 2020
Online ISSN: 2050-6260
Print ISSN: 2050-6252
ICE Publishing: All rights reserved
2021
Surface Innovations (2021) 9 (1): 17–24.
Article history
Received:
April 04 2020
Accepted:
June 01 2020
Citation
Atta A (2021), "Enhanced dielectric properties of flexible Cu/polymer nanocomposite films". Surface Innovations, Vol. 9 No. 1 pp. 17–24, doi: https://doi.org/10.1680/jsuin.20.00020
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