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首页> 外文期刊>Journal of solid state electrochemistry >Phenomenological model for the interpretation of impedance/admittance spectroscopy results in polymer light-emitting electrochemical cells
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Phenomenological model for the interpretation of impedance/admittance spectroscopy results in polymer light-emitting electrochemical cells

机译:用于解释阻抗/导纳光谱的现象学模型在聚合物发光电化学电池中的结果

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A phenomenological model has been developed to account for the results of impedance/admittance spectroscopy measurements from light-emitting electrochemical cells (LECs) comprising a polymer electrolyte and two different conjugated polymers used as organic semiconductor. The application of a d.c. offset bias superimposed to the a.c. modulation voltage was used to observe the transition from the behavior prior to device operation and after the formation of the electrochemical p-i-n junction. The analysis of the whole device "conductivity" as a function of the applied bias and of the frequency was used to support the assumptions considered to develop the model. The results show that the device, after the p-i-n junction formation, can be considered as composed by two highly conductive electrochemically doped (n and p) regions and a thin (few tens nanometers), insulating layer, where the electrical current is dominated by electronic charge carrier injection via tunneling through a rectangular energy barrier. Before the p-i-n junction formation, there is no doping of semiconductor material, and the device electrical properties are dominated by the intrinsic electronic charge carriers in the organic semiconductor. Results from devices made of organic semiconductors with different band gap energy and different layer thicknesses are used to corroborate the proposed model.
机译:已开发出一种现象学模型,以说明来自发光电化学电池(LEC)的阻抗/导纳光谱测量结果,该发光电化学电池包含聚合物电解质和用作有机半导体的两种不同的共轭聚合物。直流电的申请偏置偏置叠加到交流上调制电压用于观察从器件工作之前和电化学p-i-n结形成之后的行为转变。整个设备的“电导率”作为所施加的偏置和频率的函数的分析被用来支持为开发模型所考虑的假设。结果表明,在形成引脚结之后,该器件可以认为是由两个高导电性电化学掺杂(n和p)区域以及一个薄(几十纳米)的绝缘层组成的,其中电流主要由电子通过隧穿矩形能垒注入电荷载流子。在形成p-i-n结之前,没有掺杂半导体材料,并且器件的电学特性受有机半导体中的本征电子载流子控制。由具有不同带隙能量和不同层厚度的有机半导体制成的器件的结果用于证实所提出的模型。

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