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High operational and environmental stability of high-mobility conjugated polymer field-effect transistors achieved through the use of molecular additives

机译:通过使用分子添加剂实现的高迁移率共轭聚合物场效应晶体管的高操作和环境稳定性

摘要

Due to their low-temperature processing properties and inherent mechanical flexibility, conjugated polymer field-effect transistors (FETs) are promising candidates for enabling flexible electronic circuits and displays. Much progress has been made on materials performance; however, there remain significant concerns about operational and environmental stability, particularly in the context of applications that require a very high level of threshold voltage stability, such as active-matrix addressing of organic light-emitting diode displays. Here, we investigate the physical mechanisms behind operational and environmental degradation of high-mobility, p-type polymer FETs and demonstrate an effective route to improve device stability. We show that water incorporated in nanometre-sized voids within the polymer microstructure is the key factor in charge trapping and device degradation. By inserting molecular additives that displace water from these voids, it is possible to increase the stability as well as uniformity to a high level sufficient for demanding industrial applications.udud
机译:由于其低温处理性能和固有的机械柔韧性,共轭聚合物场效应晶体管(FET)是实现柔性电子电路和显示器的有希望的候选者。在材料性能方面已取得很大进展;然而,对于操作和环境稳定性,尤其是在要求非常高的阈值电压稳定性的应用的情况下,例如有机发光二极管显示器的有源矩阵寻址,仍然存在重大的问题。在这里,我们研究了高迁移率,p型聚合物FET的运行和环境退化背后的物理机制,并展示了改善器件稳定性的有效途径。我们表明,在聚合物微结构内纳米级空隙中掺入的水是电荷捕获和器件降解的关键因素。通过插入从这些空隙中置换水的分子添加剂,可以将稳定性和均匀性提高到足以满足要求苛刻的工业应用的水平。

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