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Numerical investigations on the current conduction in bilayer organic light-emitting devices with ohmic injection of charge carriers

机译:载流子欧姆注入的双层有机发光器件中电流传导的数值研究

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摘要

A numerical model for bilayer organic light-emitting diodes (OLEDs) has been developed on the basis of trapped charge limited conduction. The dependences of the current density on the operation voltage, the thickness and trap properties of the hole transport layer (HTL) and emission layer (EML) in bilayer OLEDs of the structure an-ode/HTL/EML/cathode have been numerically investigated. It has been found that, for given values of reduced trap depth, total trap density, and carrier mobility of HTL and EML, there exists an optimum thickness ratio of HTL to the sum of HTL and EML, by which a maximal current density, and hence maximal quantum efficiency and luminance, can be achieved. The current density decreases quickly with the mean trap density, and decreases nearly exponentially with the mean reduced trap depth.
机译:双层有机发光二极管(OLEDs)的数值模型是在捕获的电荷受限传导的基础上开发的。数值研究了结构为阳极/ HTL / EML /阴极的双层OLED中电流密度对工作电压,空穴传输层(HTL)和发射层(EML)的厚度和陷阱性质的依赖性。已经发现,对于给定的减小的阱深度,总阱密度以及HTL和EML的载流子迁移率的值,存在HTL与HTL和EML的总和的最佳厚度比,由此最大电流密度和因此可以实现最大的量子效率和亮度。电流密度随着平均陷阱密度的增加而迅速减小,并且随着平均陷阱深度的减小而几乎呈指数下降。

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