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Structural control of mixed ionic and electronic transport in conducting polymers

机译:导电聚合物中离子和电子混合输运的结构控制

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摘要

Poly(3,4-ethylenedioxythiophene) doped with poly(styrenesulfonate), PEDOT:PSS, has been utilized for over two decades as a stable, solution-processable hole conductor. While its hole transport properties have been the subject of intense investigation, recent work has turned to PEDOT:PSS as a mixed ionic/electronic conductor in applications including bioelectronics, energy storage and management, and soft robotics. Conducting polymers can efficiently transport both holes and ions when sufficiently hydrated, however, little is known about the role of morphology on mixed conduction. Here, we show that bulk ionic and electronic mobilities are simultaneously affected by processing-induced changes in nano- and meso-scale structure in PEDOT:PSS films. We quantify domain composition, and find that domain purification on addition of dispersion co-solvents limits ion mobility, even while electronic conductivity improves. We show that an optimal morphology allows for the balanced ionic and electronic transport that is critical for prototypical mixed conductor devices. These findings may pave the way for the rational design of polymeric materials and processing routes to enhance devices reliant on mixed conduction.
机译:掺杂有聚苯乙烯磺酸盐的聚(3,4-乙撑二氧噻吩)PEDOT:PSS作为稳定的,可溶液加工的空穴导体已使用了二十多年。尽管其空穴传输性能一直受到广泛研究,但最近的工作已转向PEDOT:PSS作为混合离子/电子导体,其应用包括生物电子学,能量存储和管理以及软机器人。导电聚合物在充分水合时可以有效地传输空穴和离子,但是,关于形态学对混合导电的作用知之甚少。在这里,我们表明,在PEDOT:PSS膜中,纳米和中尺度结构的加工诱导变化会同时影响整体离子和电子迁移率。我们对域组成进行了量化,发现即使添加了电子助剂,也可以通过添加分散助溶剂来纯化域,从而限制离子迁移率。我们表明,最佳形态允许平衡的离子和电子传输,这对于典型的混合导体设备至关重要。这些发现可能为合理设计聚合物材料和加工路线以增强依赖于混合传导的器件铺平了道路。

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