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Asymmetric Injection in Organic Transistors via DirectSAM Functionalization of Sourceand Drain Electrodes

机译:通过直接不对称注入有机晶体管源代码的SAM功能化和漏电极

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摘要

The fabrication of organic optoelectronic devices integrating asymmetric electrodes enables optimal charge injection/extraction at each individual metal/semiconductor interface. This is key for applications in devices such as solar cells, light-emitting transistors, photodetectors, inverters, and sensors. Here, we describe a new method for the asymmetric functionalization of gold electrodes with different thiolated molecules as a viable route to obtain two electrodes with drastically different work function values. The process involves an ad hoc design of electrode geometry and the use of a polymeric mask to protect one electrode during the first functionalization step. Photoelectron yield ambient spectroscopy and X-ray photoelectron spectrometry were used to characterize the energetic properties and the composition of the asymmetrically functionalized electrodes. Finally, we used poly(3-hexylthiophene)-based organic thin-film transistors to show that the asymmetric electronic response stems from the different electronic structures of the functionalized electrodes.
机译:集成不对称电极的有机光电器件的制造能够在每个单独的金属/半导体界面实现最佳的电荷注入/提取。这对于太阳能电池,发光晶体管,光电检测器,逆变器和传感器等设备的应用至关重要。在这里,我们描述了一种新的方法,将具有不同硫醇化分子的金电极进行不对称功能化,作为获得两个功函数值截然不同的电极的可行途径。该方法涉及电极几何形状的临时设计,以及在第一功能化步骤期间使用聚合物掩膜保护一个电极。使用光电子产率环境光谱法和X射线光电子能谱法表征不对称功能化电极的能量性质和组成。最后,我们使用基于聚(3-己基噻吩)的有机薄膜晶体管来证明不对称电子响应源于功能化电极的不同电子结构。

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