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Normal and inverted regimes of charge transfer controlled by density of states at polymer electrodes

机译:电荷转移的正态和反态由聚合物电极上的态密度控制

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摘要

Conductive polymer electrodes have exceptional promise for next-generation bioelectronics and energy conversion devices due to inherent mechanical flexibility, printability, biocompatibility, and low cost. Conductive polymers uniquely exhibit hybrid electronic–ionic transport properties that enable novel electrochemical device architectures, an advantage over inorganic counterparts. Yet critical structure–property relationships to control the potential-dependent rates of charge transfer at polymer/electrolyte interfaces remain poorly understood. Herein, we evaluate the kinetics of charge transfer between electrodeposited poly-(3-hexylthiophene) films and a model redox-active molecule, ferrocenedimethanol. We show that the kinetics directly follow the potential-dependent occupancy of electronic states in the polymer. The rate increases then decreases with potential (both normal and inverted kinetic regimes), a phenomenon distinct from inorganic semiconductors. This insight can be invoked to design polymer electrodes with kinetic selectivity toward redox active species and help guide synthetic approaches for the design of alternative device architectures and approaches.
机译:导电聚合物电极因其固有的机械柔韧性,可印刷性,生物相容性和低成本而对于下一代生物电子和能量转换设备具有非凡的前景。导电聚合物独特地展现出混合的电子-离子传输特性,从而实现了新颖的电化学装置架构,这是优于无机同行的优势。但是,对于控制聚合物/电解质界面上电位依赖的电荷转移速率的关键结构-性质关系仍然知之甚少。在这里,我们评估电沉积的聚(3-己基噻吩)薄膜与模型氧化还原活性分子二茂铁二甲醇之间的电荷转移动力学。我们表明动力学直接遵循聚合物中电子态的电位依赖占有率。速率增加,然后随着电势(正常和反向动力学机制)下降,这是与无机半导体不同的现象。可以利用这种见解来设计对氧化还原活性物质具有动力学选择性的聚合物电极,并帮助指导合成方法设计替代设备的体系结构和方法。

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