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基于水合二氧化铱及其复合材料的新型可靠pH传感器。

The New Reliable pH Sensor Based on Hydrous Iridium Dioxide and Its Composites.

作者信息

Lenar Nikola, Piech Robert, Paczosa-Bator Beata

机构信息

Faculty of Materials Science and Ceramics, AGH University of Science and Technology, Mickiewicza 30, PL-30059 Krakow, Poland.

出版信息

Materials (Basel). 2022 Dec 25;16(1):192. doi: 10.3390/ma16010192.

Abstract

The new reliable sensor for pH determination was designed with the use of hydrous iridium dioxide and its composites. Three different hIrO-based materials were prepared and applied as solid-contact layers in pH-selective electrodes with polymeric membrane. The material choice included standalone hydrous iridium oxide; composite material of hydrous iridium oxide, carbon nanotubes, and triple composite material composed of hydrous iridium oxide; carbon nanotubes; and poly(3-octylthiophene-2,5-diyl). The paper depicts that the addition of functional material to standalone metal oxide is beneficial for the performance of solid-state ion-selective electrodes and presents the universal approach to designing this type of sensors. Each component contributed differently to the sensors' performance-the addition of carbon nanotubes increased the electrical capacitance of sensor (up to 400 µF) while the addition of conducting polymer allowed it to increase the contact angle of material changing its wetting properties and enhancing the stability of potentiometric response. Hydrous iridium oxide contacted electrodes exhibit linear response in wide linear range of pH (2-11) and stable potentiometric response (the lowest potential drift of 0.036 mV/h is attributed to the electrode with triple composite material).

摘要

新型可靠的pH测定传感器是利用水合二氧化铱及其复合材料设计而成的。制备了三种不同的基于水合氧化铱的材料,并将其用作具有聚合物膜的pH选择性电极中的固体接触层。材料选择包括单独的水合氧化铱;水合氧化铱、碳纳米管的复合材料,以及由水合氧化铱、碳纳米管和聚(3-辛基噻吩-2,5-二基)组成的三元复合材料。本文描述了向单独的金属氧化物中添加功能材料对固态离子选择性电极的性能有益,并提出了设计此类传感器的通用方法。每种成分对传感器性能的贡献各不相同——添加碳纳米管增加了传感器的电容(高达400 μF),而添加导电聚合物则使其能够增加材料的接触角,改变其润湿性并增强电位响应的稳定性。水合氧化铱接触电极在较宽的pH线性范围(2-11)内表现出线性响应和稳定的电位响应(最低电位漂移为0.036 mV/h,归因于三元复合材料电极)。

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