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Analysis of self-heating and trapping in organic semiconductor devices

机译:有机半导体器件中的自热和陷阱分析

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So far self-heating has only been of concern in large-area devices where the resistive transparent anode leads to a potential drop over the device resulting in inhomogeneous current, brightness and temperature distributions. In this work, we show that even small lab devices suffer from self-heating effects originating from the organic semiconductor layer. In admittance spectroscopy of organic semiconductor devices, negative capacitance values often arise at low frequency and high voltages. In this study we demonstrate the influence of self-heating on organic semiconductor devices with the aid of a numerical 1D drift-diffusion model that is extended by Joule heating and heat conduction. Furthermore the impact of trap states on the capacitance in combination with self-heating is demonstrated. The typical signature of self-heating might be overshadowed depending on the trapping dynamics. In a next step, we compare the negative capacitance vs. frequency for uni- and bipolar devices to quantify the different processes. We emphasize the impact of self-heating and trapping on OLEDs and organic solar cells. To ease the interpretation of the results we investigate simulations in the time domain as well as in the frequency domain. We have provided clear evidence of self-heating of organic semiconductor devices and conclude that a comprehensive model requires the inclusion of heat conduction and heat generation in the drift-diffusion model.
机译:迄今为止,仅在大面积器件中才需要考虑自加热,在这种器件中,透明电阻性电阻会导致器件上的电势下降,从而导致电流,亮度和温度分布不均匀。在这项工作中,我们表明,即使是小型实验室设备,也会遭受源自有机半导体层的自热效应。在有机半导体器件的导纳光谱中,在低频和高压下经常会出现负电容值。在这项研究中,我们借助数值一维漂移扩散模型(通过焦耳加热和导热扩展)证明了自热对有机半导体器件的影响。此外,还展示了陷阱状态与自发热相结合对电容的影响。自热的典型特征可能会根据捕获动态而被遮盖。在下一步中,我们比较单极性和双极性器件的负电容与频率的关系,以量化不同的过程。我们强调自热和捕集对OLED和有机太阳能电池的影响。为了简化结果的解释,我们研究了时域和频域中的仿真。我们已经提供了有机半导体器件自发热的明确证据,并得出结论,综合模型需要在漂移扩散模型中包括热传导和热量产生。

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