Hamidouche Fahim, Ghebache Zohra, Lepretre Jean-Claude, Djelali Nacer-Eddine
Laboratory of Polymers Treatment and Forming (LTMFP), M'Hamed Bougara University, Boumerdes 35000, Algeria.
Univ. Grenoble Alpes, Univ. Savoie Mont Blanc, CNRS, Grenoble INP, LEPMI, F-38000 Grenoble, France.
Polymers (Basel). 2024 Mar 27;16(7):919. doi: 10.3390/polym16070919.
Conductive polymers such as polypyrrole have been widely used as pseudo-capacitive electrodes for supercapacitors. This work demonstrates a simple method to improve the performance of conductive polymer electrodes by adding montmorillonite in order to perform capacitive behavior. Conductive composite polymers (CCPs) based on montmorillonite/polypyrrole (MMT/PPy(Cl)) have been synthesized by polymerization using FeCl as an oxidizing agent. During the preparation of CCP, the effect of MMT/pyrrole mass ratio and the influence of the amount of added H and temperature of the synthesis medium on the electrochemical performance of the composite have been investigated. The investigation associated with conductivity measurement allowed us to determine the best conditions to reach a high specific capacitance of 465 F gr measured by cyclic voltammetry with respect to the CCP synthesized at ambient temperature (220 F gr) and a 35% increase in capacity compared to its homologue synthesized in neutral conditions at a low temperature. These performances have been advantageously correlated both to the edge acidity of the host material and to the evolution of its conductivity according to the preparation conditions. The galvanostatic charge/discharge tests also confirm the stability of the obtained composite, and a capacitance of 325 F g for the best CCP is recorded with a regime of 1 A g. In addition, the durability of the device shows that the proposed material has a relatively good stability during cycling.
诸如聚吡咯之类的导电聚合物已被广泛用作超级电容器的赝电容电极。这项工作展示了一种通过添加蒙脱石来改善导电聚合物电极性能以实现电容行为的简单方法。基于蒙脱石/聚吡咯(MMT/PPy(Cl))的导电复合聚合物(CCP)已通过使用FeCl作为氧化剂进行聚合反应合成。在CCP的制备过程中,研究了MMT/吡咯质量比的影响以及合成介质中添加的H量和温度对复合材料电化学性能的影响。与电导率测量相关的研究使我们能够确定在室温下合成的CCP(220 F g)通过循环伏安法测得达到465 F g高比电容的最佳条件,并且与在低温中性条件下合成的同系物相比容量增加了35%。这些性能既与主体材料的边缘酸度有利地相关,也与根据制备条件其电导率的变化相关。恒电流充放电测试也证实了所得复合材料的稳定性,在1 A g的电流密度下,最佳CCP的电容记录为325 F g。此外,该器件的耐久性表明所提出的材料在循环过程中具有相对较好的稳定性。