Properties of Polysiloxane/Nanosilica Nanodielectrics for Wearable Electronic Devices

材料科学 纳米复合材料 复合材料 电介质 极限抗拉强度 耗散因子 动态力学分析 介电常数 结块 模数 介电损耗 动态模量 聚合物 光电子学
作者
Elena Radu,Denis Mihaela Panaitescu,Laura Andrei,Florin Ciuprina,Cristian Andi Nicolae,Augusta Raluca Gabor,Roxana Truşcă
出处
期刊:Nanomaterials [Multidisciplinary Digital Publishing Institute]
卷期号:12 (1): 95-95 被引量:5
标识
DOI:10.3390/nano12010095
摘要

Polymer nanodielectrics characterized by good flexibility, processability, low dielectric loss and high dielectric permittivity are materials of interest for wearable electronic devices and intelligent textiles, and are highly in demand in robotics. In this study, an easily scalable and environmentally friendly method was applied to obtain polysiloxane/nanosilica nanocomposites with a large content of nanofiller, of up to 30% by weight. Nanosilica was dispersed both as individual particles and as agglomerates; in nanocomposites with a lower amount of filler, the former prevailed, and at over 20 wt% nanosilica the agglomerates predominated. An improvement of both the tensile strength and modulus was observed for nanocomposites with 5-15 wt% nanosilica, and a strong increase of the storage modulus was observed with the increase of nanofiller concentration. Furthermore, an increase of the storage modulus of up to seven times was observed in the nanocomposites with 30 wt% nanosilica. The tensile modulus was well fitted by models that consider the aggregation of nanoparticles and the role of the interface. The dielectric spectra showed an increase of the real part of the complex relative permittivity with 33% for 30 wt% nanosilica in nanocomposites at a frequency of 1 KHz, whereas the loss tangent values were lower than 0.02 for all tested nanodielectrics in the radio frequency range between 1 KHz and 1 MHz. The polysiloxane-nanosilica nanocomposites developed in this work showed good flexibility; however, they also showed increased stiffness along with a stronger dielectric response than the unfilled polysiloxane, which recommends them as dielectric substrates for wearable electronic devices.
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