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使用导电聚合物作为离子-电子换能器的全固态离子选择性电极的潜在稳定性

Potential Stability of All-Solid-State Ion-Selective Electrodes Using Conducting Polymers as Ion-to-Electron Transducers.

作者信息

Bobacka J

机构信息

Laboratory of Analytical Chemistry, Centre for Process Analytical Chemistry and Sensor Technology (ProSens), Åbo Akademi University, Biskopsgatan 8, FIN-20500, Turku-Åbo, Finland.

出版信息

Anal Chem. 1999 Nov 1;71(21):4932-7. doi: 10.1021/ac990497z.

Abstract

Demanding analytical applications such as on-line process analysis and clinical analysis require robust, reliable, and maintenance-free ion sensors of high potential stability. In this work the stability of the electrode potential of all-solid-state ion-selective electrodes using conducting polymers as ion-to-electron transducers is critically evaluated by using chronopotentiometry and electrochemical impedance spectroscopy. This study is focused on the relationship between the potential stability of the electrode and the capacitance of the solid contact where ion-to-electron transduction takes place. The influence of this capacitance on the potential stability of all-solid-state ion-selective electrodes is studied experimentally by using conducting polymer layers of different thickness as solid contacts in potassium ion-selective electrodes based on a solvent polymeric membrane. Because of its excellent environmental stability, the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) is used as a model compound for the solid contact material. Chronopotentiometry is found to be a convenient and fast experimental method to critically evaluate the potential stability of different types of ion-selective electrodes.

摘要

诸如在线过程分析和临床分析等要求严苛的分析应用需要具备高电位稳定性、坚固、可靠且无需维护的离子传感器。在这项工作中,通过使用计时电位法和电化学阻抗谱,对以导电聚合物作为离子-电子换能器的全固态离子选择性电极的电极电位稳定性进行了严格评估。本研究聚焦于电极的电位稳定性与发生离子-电子转换的固体接触电容之间的关系。通过在基于溶剂聚合物膜的钾离子选择性电极中使用不同厚度的导电聚合物层作为固体接触,实验研究了该电容对全固态离子选择性电极电位稳定性的影响。由于其优异的环境稳定性,导电聚合物聚(3,4-亚乙基二氧噻吩)(PEDOT)被用作固体接触材料的模型化合物。发现计时电位法是一种方便快捷的实验方法,可用于严格评估不同类型离子选择性电极的电位稳定性。

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