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首页> 外文期刊>Journal of Vacuum Science & Technology. B, Microelectronics and Nanometer Structures >Transport mechanisms and the effects of organic layer thickness on the performance of organic Schottky diodes
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Transport mechanisms and the effects of organic layer thickness on the performance of organic Schottky diodes

机译:传输机制以及有机层厚度对有机肖特基二极管性能的影响

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摘要

Experimental results of static and dynamic characteristics for single-layer hole-only devices based on copper phthalcyanine (CuPc) and pentacene are observed in this article. The contribution to injection currents from electrode has been investigated by varying the thickness of the organic film. From the observation of current density versus bias voltage (J-V) characteristics, it is concluded that the space-charge-limited conductivity is the dominant transport mechanism for the organic Schottky diodes. Accordingly, an increase of the organic layer thickness will increase the trapping energy level. However, even with the thin CuPc film down to 50 nm, the dynamic cut-off frequency of the device is still limited to 150 Hz. Low hole mobility and large active area of the device are responsible for the phenomenon. Dramatic enhancement of cut-off frequency up to 11 kHz can be obtained for the pentacene-based Schottky diodes.
机译:本文观察了基于铜酞菁(CuPc)和并五苯的单层仅空穴器件的静态和动态特性的实验结果。通过改变有机膜的厚度已经研究了电极对注入电流的影响。从电流密度与偏置电压(J-V)特性的观察,可以得出结论,空间电荷受限的电导率是有机肖特基二极管的主要传输机制。因此,有机层厚度的增加将增加俘获能级。但是,即使CuPc薄膜低至50 nm,该器件的动态截止频率仍然限制在150 Hz。空穴迁移率低和器件的有效面积大是造成这种现象的原因。对于并五苯肖特基二极管,截止频率可以显着提高,最高可达11 kHz。

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