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首页> 外文期刊>Russian Journal of Physical Chemistry >The microstructure of and charge transfer in thin films based on metal-polymer nanocomposites
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The microstructure of and charge transfer in thin films based on metal-polymer nanocomposites

机译:基于金属-聚合物纳米复合材料的薄膜的微观结构和电荷转移

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摘要

Charge transfer in nanostructured metal-polymer composites was studied. The frequency dependences of film conductance and susceptance were obtained at various metal concentrations. The susceptance of samples above the percolation threshold was negligibly small, which corresponded to the purely metallic conductivity type. For samples below the percolation threshold, susceptance and conductance were comparable in magnitude, which was evidence of an important role played by susceptance mechanisms. At low frequencies, the samples behaved as quasi-linear RC circuits and both the active and reactive impedance components increased linearly as the frequency grew. At high frequencies, the dispersion of susceptance, which was inversely proportional to frequency, was observed. The conclusion was drawn that the hopping conductivity mechanism through polymeric matrix surface states prevailed in films below the percolation threshold. At high frequencies, when the applied voltage period was shorter than the characteristic time of surface state recharging, these states began to be eliminated from charge transfer processes. It was suggested that a decrease in the reactive impedance component with an increase in frequency might be the reason for the dispersion observed experimentally.
机译:研究了纳米结构的金属-聚合物复合材料中的电荷转移。在各种金属浓度下,获得了薄膜电导和电纳的频率依赖性。高于渗滤阈值的样品的磁化率很小,可以忽略不计,这与纯金属导电类型相对应。对于低于渗滤阈值的样品,电导率和电导在大小上是可比的,这证明了电导率机制起着重要作用。在低频下,样本表现为准线性RC电路,有功和无功阻抗分量都随频率的增加而线性增加。在高频下,观察到电纳的弥散与频率成反比。得出的结论是,低于渗透阈值的薄膜中普遍存在通过聚合物基质表面状态的跳跃电导机理。在高频下,当施加的电压周期短于表面状态再充电的特征时间时,这些状态开始从电荷转移过程中消除。有人提出,随着频率的增加,电抗阻抗分量的减少可能是实验观察到色散的原因。

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