| Literature DB >> 35683875 |
Štefan Hardoň1, Jozef Kúdelčík1, Anton Baran2, Ondrej Michal3, Pavel Trnka3, Jaroslav Hornak3.
Abstract
The influence of various types of nanoparticle fillers with the same diameter of 20 nm were separately incorporated into a single component impregnating resin based on a polyesterimide (PEI) matrix and its subsequent changes in complex relative permittivity were studied. In this paper, nanoparticles of Al2O3 and ZnO were dispersed into PEI (with 0.5 and 1 wt.%) to prepare nanocomposite polymer. Dielectric frequency spectroscopy was used to measure the dependence of the real and imaginary parts of complex relative permittivity within the frequency range of 1 mHz to 1 MHz at a temperature range from +20 °C to +120 °C. The presence of weight concentration of nanoparticles in the PEI resin has an impact on the segmental dynamics of the polymer chain and changed the charge distribution in the given system. The changes detected in the 1H NMR spectra confirm that dispersed nanoparticles in PEI lead to the formation of loose structures, which results in higher polymer chain mobility. A shift of the local relaxation peaks, corresponding to the α-relaxation process, and higher mobility of the polymer chains in the spectra of imaginary permittivity of the investigated nanocomposites was observed.Entities:
Keywords: 1H NMR measurements; aluminium oxide; dielectric relaxation; dielectric spectroscopy; polyesterimide; zinc oxide
Year: 2022 PMID: 35683875 PMCID: PMC9182917 DOI: 10.3390/polym14112202
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.967
The basic properties of used PEI resin.
| Property | Value |
|---|---|
| Shelf life (23 °C) | 6 months |
| Viscosity at 23 °C (mPa·s) | 7500 |
| Density at 23 °C (kg/m | 1186 |
| Gel time at 120 °C (min) | 10 ± 2 |
| Curing time at 150 °C (min) | 60 |
| Water absorption (following ISO 62) | |
| at 23 °C/24 h (mg) | 3.4 |
Technical parameters of used nanoparticles.
| Parameter | ZnO | Al |
|---|---|---|
| Diameter (nm) | 20 | 20 |
| Purity (%) | 99+ | 99.97 |
| Specific surface area (m | ≥40 | 180 |
| Bulk density (g/cm | 0.1–0.2 | 3.95 |
| Morphology of particles | spherical | spherical |
Figure 1Preparation of PEI nanocomposites: (a) production diagram; (b) verification of particles dispersion by SEM.
Figure 2The BL H NMR spectra of pure PEI and its mixtures with AlO or ZnO nanoparticles measured at ambient temperature (upper row) and 90 C (lower row).
Figure 3Temperature dependence of DMA development of pure PEI and its mixtures with AlO (a) and ZnO (b) nanoparticles.
Figure 4The frequency dependence of the relative real (a) and the imaginary (b) part of the complex relative permittivity for pure PEI at various temperatures.
Parameters obtained from the fit by the Cole-Cole model for pure PEI and its various types of nanoparticles at 100 C ( and at frequency 50 Hz, is the DC conductivity (10 S/m), is the relaxation time of -relaxation, a is the shape parameter).
| Parameter |
|
|
|
| ||
|---|---|---|---|---|---|---|
| Unit | - | - | (10 | (s) | (mHz) | - |
| Pure PEI | 3.73 / 2.5 | 0.047/ 0.033 | 0.19 | 11.91 | 13 | 0.28 |
| PEI + 0.5% ZnO | 3.97/3.59 | 0.066/0.079 | 0.25 | 1.45 | 109 | 0.22 |
| PEI + 1% ZnO | 4.08/3.69 | 0.071/0.127 | 0.37 | 1.11 | 145 | 0.14 |
| PEI + 0.5% Al | 2.15/2.82 | 0.029 | 0.13 | 13 | 12 | 0 |
| PEI + 1% Al | 2.93/2.5 | 0.077 | 0.15 | 0.76 | 200 | 0.19 |
Figure 5The frequency dependence of the real (a) and the imaginary (b) component of the complex relative permittivity for PEI with 1 wt.% ZnO nanoparticles.
Figure 6The frequency dependence of the real (a) and the imaginary (b) components of the complex relative permittivity for PEI and their various nanocomposites with ZnO at temperatures of 60 and 100 C.
Figure 7The frequency dependence of the real (a) aand imaginary (b) apart of the complex relative permittivity for PEI and their various nanocomposites with AlO at temperatures of 60 and 100 C.