| Literature DB >> 30966621 |
Xizi Chen1,2, Fei Liang3,4, Wenzhong Lu5,6, Zheng Jin7,8, Yifei Zhao9,10, Ming Fu11,12.
Abstract
In this paper, nanocomposites that contain core-shell Ag/TiO₂ particles as the filler and polytetrafluoroethylene (PTFE) as the matrix were investigated. Two surfactants, namely octyl phosphonic acid (OPA) and pentafluorobenzyl phosphonic acid (PFBPA), were applied to modify Ag/TiO₂ fillers for uniform dispersion in the matrix. Fourier transform infrared spectroscopy analysis of bonds between the TiO₂ shells and the phosphonic modifiers shows Ti⁻O⁻P chemical bonding between the Ag/TiO₂ fillers and the modifiers. Thermogravimetric analysis results show a superior adsorption effect of PFBPA over OPA on the Ag/TiO₂ filler surface at the same weight percentage. For nanocomposites that contain modified Ag/TiO₂ nanoparticles, the loss was reduced despite the high permittivity at the same loading. The permittivity of the nanocomposites by PFBPA is larger than that of OPA, because the more uniform dispersion of inorganic particles in the PTFE matrix enhances the interfacial polarization effect. The mechanism of enhanced dielectric performance was studied and discussed.Entities:
Keywords: core–shell structure; dielectric properties; interfacial modification; nanocomposites
Year: 2018 PMID: 30966621 PMCID: PMC6403823 DOI: 10.3390/polym10060586
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Molecular structures of polytetrafluoroethylene (PTFE), octyl phosphonic acid (OPA), and pentafluorobenzyl phosphonic acid (PFBPA).
Figure 2(a) X-ray diffraction (XRD) patterns from Ag/TiO2 core-shell nanoparticles (NPs) with different surfactants, (b) TEM image of Ag/TiO2 core-shell NPs, and (c) the size distribution of Ag/TiO2 core–shell NPs.
Figure 3FTIR spectra of Ag/TiO2 NPs treated with different surfactants: (a) OPA; (b) PFBPA; (c) comparison diagram of OPA-modified, PFBPA-modified, and non-modified; (d) proposed surface structure of Ag/TiO2 NPs modified with PFBPA.
Figure 4Thermogravimetric analysis of non-modified, OPA-modified, and PFBPA-modified Ag/TiO2 powders.
Figure 5SEM images of freshly fractured cross-sections of Ag/TiO2/PTFE nanocomposites containing modified Ag/TiO2 in loadings of 40 vol % and 60 vol %. (a,c): OPA-modified NPs, (b,d): PFBPA-modified NPs.
Figure 6Frequency dependence of (a) dielectric permittivity and (b) dielectric loss for nanocomposites at 40 vol % and 60 vol % nanoparticles loading with OPA-modified and PFBPA-modified Ag/TiO2 filler at room temperature.
Figure 7Frequency dependence of (a) dielectric performance and (b) conductivities σ for Ag/TiO2/PTFE nanocomposites containing PFBPA-modified Ag/TiO2 fillers at varying volume fractions at room temperature.
Figure 8Experimental and theoretic values of ε of Ag/TiO2/PTFE composites with different volume fractions of Ag/TiO2 at 1 kHz and at room temperature.