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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Analysing dielectric interphases in composites containing nano- and micro-particles
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Analysing dielectric interphases in composites containing nano- and micro-particles

机译:分析包含纳米和微粒的复合材料中的介电相

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We have investigated a molecular relaxation process in a solid polymer filled with dispersed magnetite particles (Fe3O4 in epoxy resin). In particular, we compare systems containing nano-particles with diameters between 20 and 30 nm and micro-particles with diameters between 0.5 and 5 mu m. Temperature-dependent broadband dielectric spectroscopy in a frequency range between 50 Hz and 1 GHz reveals that the presence of nano- or micro-particles does not affect the molecular dynamics, i.e. frequency, shape and thermal activation of the relaxation process. However, there is a marked difference in the polymer's relaxation strength, reflecting both the polarizability and the number of relaxing units. This quantity is evaluated from the measured effective data using the spectral representation, i.e. in spite of the complex microstructure we are able to separate unambiguously the contribution of the polarized conductive particles. While in the micro-composites the polymer matrix behaves bulk-like, its relaxation strength increases in the nano-composites, the deviation from the bulk value being proportional to the volume fraction of particles. We discuss the results in terms of interphases of thickness delta around particles and agglomerates, the volume fraction of which increases with increasing particle concentration and decreasing particle size.
机译:我们研究了填充有分散磁铁矿颗粒(环氧树脂中的Fe3O4)的固体聚合物中的分子弛豫过程。尤其是,我们比较了包含直径在20到30 nm之间的纳米颗粒和直径在0.5到5μm之间的微粒的系统。温度依赖性宽带介电谱在50 Hz至1 GHz之间的频率范围内显示,纳米或微粒的存在不会影响分子动力学,即弛豫过程的频率,形状和热活化。然而,聚合物的弛豫强度存在显着差异,这反映了极化率和弛豫单元的数量。该量是使用光谱表示法从测量的有效数据中得出的,即,尽管具有复杂的微观结构,我们仍然能够明确地分离出极化导电颗粒的作用。虽然在微复合材料中,聚合物基体表现为块状,但其松弛强度在纳米复合材料中增加,与体积值的偏差与颗粒的体积分数成比例。我们讨论了围绕颗粒和附聚物的厚度增量的中间相的结果,其体积分数随颗粒浓度的增加和颗粒尺寸的减小而增加。

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