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PEDOT:PSS for Flexible and Stretchable Electronics: Modifications Strategies and Applications

机译:PEDOT:用于可伸缩电子产品的PSS:修改策略和应用

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摘要

Substantial effort has been devoted to both scientific and technological developments of wearable, flexible, semitransparent, and sensing electronics (e.g., organic/perovskite photovoltaics, organic thin‐film transistors, and medical sensors) in the past decade. The key to realizing those functionalities is essentially the fabrication of conductive electrodes with desirable mechanical properties. Conductive polymers (CPs) of poly(3,4‐ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) have emerged to be the most promising flexible electrode materials over rigid metallic oxides and play a critical role in these unprecedented devices as transparent electrodes, hole transport layers, interconnectors, electroactive layers, or motion‐sensing conductors. Here, the current status of research on PEDOT:PSS is summarized including various approaches to boosting the electrical conductivity and mechanical compliance and stability, directly linked to the underlying mechanism of the performance enhancements. Along with the basic principles, the most cutting edge‐progresses in devices with PEDOT:PSS are highlighted. Meanwhile, the advantages and plausible problems of the CPs and as‐fabricated devices are pointed out. Finally, new perspectives are given for CP modifications and device fabrications. This work stresses the importance of developing CP films and reveals their critical role in the evolution of these next‐generation devices featuring wearable, deformable, printable, ultrathin, and see‐through characteristics.
机译:在过去的十年中,人们致力于可穿戴,柔性,半透明和感应电子设备(例如,有机/钙钛矿型光电,有机薄膜晶体管和医疗传感器)的科学和技术发展。实现这些功能的关键实质上是制造具有所需机械性能的导电电极。聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)的导电聚合物(CP)已成为刚性金属氧化物以外最有希望的柔性电极材料,并且在这些前所未有的设备中作为透明电极发挥着关键作用,空穴传输层,互连器,电活性层或运动感应导体。在此,对PEDOT:PSS的研究现状进行了总结,包括各种提高电导率,机械柔顺性和稳定性的方法,这些方法直接与性能增强的潜在机制相关。除了基本原理,还着重介绍了PEDOT:PSS设备中最前沿的技术。同时,指出了CP和装配好的设备的优点和可能存在的问题。最后,给出了CP修改和设备制造的新视角。这项工作强调了开发CP胶片的重要性,并揭示了它们在这些具有可穿戴,可变形,可印刷,超薄和透明特性的下一代设备的发展中的关键作用。

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