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首页> 外文期刊>Journal of intelligent material systems and structures >Mass and charge density effects on the saturation kinetics of polypyrrole doped with dodecylbenzene sulfonate
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Mass and charge density effects on the saturation kinetics of polypyrrole doped with dodecylbenzene sulfonate

机译:质量和电荷密度对十二烷基苯磺酸盐掺杂的聚吡咯饱和动力学的影响

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In this article, the saturation kinetics model that describes chronoamperometric response of PPy(DBS) in our recently published work is extended to study the effect of mass and charge density on the step response of PPy(DBS). The saturation kinetics model is based on a mechanistic approach for charge storage in conducting polymers and leads to the development of structure-dependent input-output relationships to develop a cation concentration sensor. In this article, we demonstrate the use of poles and residues in the saturation kinetics model to deconstruct the chronoamperometric and chronocoulometric response by seperating the contributions from double layer charge accumulation and faradaic ion transport. We show that: (i) the number of redox sites, and therefore the number of ingressing ions at saturation, is directly proportional to the mass of the conducting polymer, (ii) the accessibility of these redox sites associated with ion ingress is inversely proportional to the conducting polymer charge density, (iii) the rate of ion ingress is found to be inversely proportional to mass and charge density, due to the decrease in the driving force per unit redox site and redox site accessibility, respectively. For lower charge densities, the mass has a dominant effect on saturation and rate of ion ingress, with charge density effects becoming apparent as it increases. The saturation charges obtained are consistent with the peak charges during cyclic voltammetry, thus validating the mechanistic interpretations. The findings of this article highlight the trade-offs between charge storage and transport properties for conducting polymer devices.
机译:在本文中,扩展了描述PPy(DBS)计时电流响应的饱和动力学模型,以研究质量和电荷密度对PPy(DBS)阶跃响应的影响。饱和动力学模型基于一种用于导电聚合物中电荷存储的机械方法,并导致开发与结构相关的输入-输出关系,以开发阳离子浓度传感器。在本文中,我们通过分离双层电荷累积和法拉第离子传输的贡献,证明了饱和动力学模型中极点和残基的使用可解构计时电流法和计时电量法响应。我们显示:(i)氧化还原位点的数量,因此饱和时进入的离子数与导电聚合物的质量成正比,(ii)与离子进入相关的这些氧化还原位点的可及性成反比对于导电聚合物电荷密度,(iii)由于每单位氧化还原位点的驱动力和氧化还原位点可及性的降低,发现离子的进入速率与质量和电荷密度成反比。对于较低的电荷密度,质量对饱和度和离子进入速率具有主要影响,随着电荷密度的增加,电荷密度效应变得明显。所获得的饱和电荷与循环伏安法中的峰值电荷一致,从而验证了机理解释。本文的研究结果突出了导电聚合物器件在电荷存储和传输特性之间的权衡。

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