新型p型导电聚合物复合材料的合成及电化学电容器性能研究

IF 2.3 Q3 ELECTROCHEMISTRY
N. Ajami
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引用次数: 2

摘要

考虑到导电聚合物纳米复合材料的重要性,本文试图创造一种提高聚邻氨基苯酚导电性的方法。采用脉冲电位电沉积技术在石墨电极上制备了纳米复合MnO2/聚邻氨基苯酚薄膜。在本研究中,MnO2纳米颗粒在合成后被用于一步制备聚合物纳米复合材料。将MnO2添加到聚合物基体上增加了电流。这种电流增长可归因于协同MnO2纳米结构,其具有优异的表面积和较小的颗粒尺寸,是越来越多的作用位点。通过扫描电子显微镜和紫外-可见光谱法研究了纳米复合材料的形貌或样品组成,清楚地表明了纳米复合物的形成。结果表明,MnO2聚邻氨基苯酚的电容行为优于聚邻氨基酚,尤其是在高电位高温下。结果表明,MnO2/聚邻氨基苯酚比纯聚合物膜具有更高的活性水平和更快的电子转移能力。掺杂的MnO2聚合物还具有优异的循环性能和负载-放电特性。相对于纯聚合物,观察到这些聚合物复合材料的额外电化学性能,因此已指定645 Fg−1的容量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis and Electrochemical Capacitor Characterization of Novel Composite Materials with p-Type Conductive Polymer
Considering the importance of conductive polymer nanocomposite, the present paper attempts to create a method for increasing the conductivity of poly(o-aminophenol). Nanocomposite MnO2/poly(o-aminophenol) thin film was synthesized by using pulse potential electrodeposition technique on a graphite electrode. In this research, nanoparticles of MnO2 are used after synthesis to prepare polymer nanocomposites in one-step. Appending of MnO2 to polymer matrix increases the current. This current growth could be ascribed to the synergistic MnO2 nanostructure, which presents the superior surface area and smaller particle size that is increasingly acting sites. Morphology or samples composition was investigated by the scanning electron microscope and the UV-Vis method, which clearly indicate the formation of nanocomposites. The findings show that the capacitive behavior of MnO2-poly(o-aminophenol) is superior to poly(o-aminophenol), especially at high potential high temperatures. The results showed that MnO2/poly(o-aminophenol) had a higher level of activity and the electron transfer capability was faster than pure polymer film. The doped MnO2 polymer also has excellent cyclic performance and load discharge features. Additional electrochemical properties of these polymer composites were observed against pure polymer so that capacity of 645 Fg−1 has been designated.
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