聚吡咯
材料科学
过硫酸铵
介电谱
导电聚合物
化学工程
涂层
聚合
聚苯胺
电化学
复合材料
聚合物
电极
化学
物理化学
工程类
作者
F. Z. Engin Sagirli,Tolga Karazehir,A. Sezai̇ Sarac
摘要
Abstract We have fabricated multifunctional conductive fabrics composed of polypyrrole/BaTiO 3 /poly(acrylonitrile‐co‐methylacrylate) (PPy/BaTiO 3 /P(AN‐co‐MA)(PBA) utilizing a simple process including dip coating and in situ chemical polymerization of pyrrole, which oxidized both ammonium persulfate (APS) and ammonium persulfate + iron (III) chloride (APS + FeCl 3 ) for flexible and wearable textile applications. The influence of the oxidant nature, PPy content, and BaTiO 3 on the surface structures, electrochemical, and semiconducting characteristics of the fabrics was examined using scanning electrochemical microscopy (SEM), electrochemical impedance spectroscopy (EIS), and the Mott–Schottky (M–S) studies. The study revealed that the size of the polymer nanostructures on fabric has an impact on the electrochemical impedance properties. Specifically, a decrease in diameter (when FeCl 3 + APS is used) or the formation of more compact swelling surface structures (when only APS is used) is associated with changes in the conductivity of the coated fabric. Based on the EIS tests, the composite coating (S0.1, S0.2, and S0.3) with FeCl 3 has a higher electrical conductivity compared to the coating with APS (PBA). The M–S tests indicate that the semiconducting characteristics of coated fabrics are dependent upon the kind of oxidant, the amount of PPy, and the presence of BaTiO 3 .
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