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Organic Field-Effect Transistors: A 3D Kinetic Monte Carlo Simulation of the Current Characteristics in Micrometer-Sized Devices

机译:有机场效应晶体管:微米级器件中电流特性的3D动力学蒙特卡洛模拟

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摘要

The electrical properties of organic field-effect transistors (OFETs) are usually characterized by applying models initially developed for inorganic-based devices, which often implies the use of approximations that might be inappropriate for organic semiconductors. These approximations have brought limitations to the understanding of the device physics associated with organic materials. A strategy to overcome this issue is to establish straightforward connections between the macroscopic current characteristics and microscopic charge transport in OFETs. Here, a 3D kinetic Monte Carlo model is developed that goes beyond both the conventional assumption of zero channel thickness and the gradual channel approximation to simulate carrier transport and current. Using parallel computing and a new algorithm that significantly improves the evaluation of electric potential within the device, this methodology allows the simulation of micrometer-sized OFETs. The current characteristics of representative OFET devices are well reproduced, which provides insight into the validity of the gradual channel approximation in the case of OFETs, the impact of the channel thickness, and the nature of microscopic charge transport.
机译:有机场效应晶体管(OFET)的电特性通常通过应用最初为基于无机的器件开发的模型来表征,这通常意味着使用可能不适用于有机半导体的近似值。这些近似值给理解与有机材料有关的器件物理带来了限制。解决该问题的策略是在OFET中建立宏观电流特性与微观电荷传输之间的直接联系。在这里,开发了一个3D动力学蒙特卡洛模型,该模型超越了常规的零沟道厚度假设和渐进沟道近似来模拟载流子传输和电流的模型。使用并行计算和新算法可以显着改善设备内电势的评估,该方法可以模拟微米级的OFET。代表性的OFET器件的当前特性已被很好地再现,从而提供了对于OFET情况下渐进通道近似的有效性,通道厚度的影响以及微观电荷传输性质的深入了解。

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