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Thermally assisted charge injection at electrode/polyethylene interfaces evidenced by direct observation of space charge

机译:通过直接观察空间电荷证明在电极/聚乙烯界面处的热辅助电荷注入

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摘要

A layered sample consisting of a polyethylene (PE) film and a both surface fluorinated PE plate was used to investigate charge injection at the semiconductive, Al, or Au electrode/PE interface by space charge observation based on the pressure wave propagation method, to determine whether the charge injection is a thermal excitation process. Space charge observation in the layered sample subjected to a dc field of positive or negative 5 kV/mm at 20 or 60 ??C shows that charge injection at the electrode/PE film interface and charge accumulation at the film/surface fluorinated plate interface do not stop so long as the electrode field is not reduced to zero, independent of electrode material. The charge injection and accumulation rates strongly depend on the charging temperature. At 60 ??C, it only needs 15 min for the electrode field to decrease to zero or the charge accumulation at the film/surface fluorinated plate interface to reach a maximum value, while the electrode field is still about 47 % of its initial value even after 240 min charging at 20 ??C. The very likely existence of electrode-induced gap states at the electrode/PE interfaces and the thermal excitation of charge carriers from the electrode-induced gap states near the charge neutrality level to the bulk states of PE can account for the observations of the charge injection behavior.
机译:使用由聚乙烯(PE)膜和两面氟化PE板组成的分层样品,通过基于压力波传播方法的空间电荷观察来研究在半导体,Al或Au电极/ PE界面处的电荷注入,以确定电荷注入是否为热激发过程。在20或60°C下经受5 kV / mm正或负直流电压的分层样品中的空间电荷观察表明,在电极/ PE膜界面处的电荷注入和在膜/表面氟化板界面处的电荷积累确实只要电极场不减小到零就不会停止,而与电极材料无关。电荷注入和累积速率在很大程度上取决于充电温度。在60℃时,仅需15分钟即可使电极场降至零或膜/表面氟化板界面处的电荷积累达到最大值,而电极场仍约为其初始值的47%即使在20°C下充电240分钟后。电极/ PE界面上极有可能存在电极感应的间隙状态,并且电荷载流子从接近电荷中性能级的电极感应的间隙状态到PE的体态的热激发可以解释电荷注入的现象。行为。

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