Samwang Thaneeya, Watanabe Nozomi Morishita, Okamoto Yukihiro, Umakoshi Hiroshi
Division of Chemical Engineering, Graduate School of Engineering Science, Osaka University, 1-3 Machikaneyamacho, Toyonaka 560-8531, Osaka, Japan.
Department of Chemical Engineering, Faculty of Engineering, Mahidol University, 25/25 Phuttamonthon 4 Road, Salaya, Phuttamonthon, Nakhon Pathom 73170, Thailand.
Molecules. 2024 Mar 7;29(6):1197. doi: 10.3390/molecules29061197.
This research aims to deepen the understanding of the relationship between conductivity and morphology in polypyrrole (PPy) via a comparison of the bipolaron to polaron ratios with a focus on the C-H deformation area. PPy samples were synthesized with different surfactants: sodium dodecyl sulfate (SDS), cetyltrimethylammonium bromide (CTAB), and tween 80 (TW). This study revealed that SDS significantly altered the bipolaron and polaron in the C-H deformation region and showed higher conductivity than other surfactants. Notably, the morphological shifts to a sheet-like structure when using ammonium sulfate (APS) contrasted with the particle-like form observed with ferric chloride (FeCl). These results showed that if the oxidant changed, the bipolaron and polaron ratios in C-H deformation were unrelated to PPy morphology. However, this work showed a consistent relationship between SDS use, the bipolaron and polaron ratios in the C-H deformation, and the conductivity properties. Moreover, the natural positive charge of PPy and negatively charged SDS molecules may lead to an electrostatic interaction between PPy and SDS. This work assumes that this interaction might cause the transformation of polaron to bipolaron in the C-H deformation region, resulting in improved conductivity of PPy. This work offers more support for the future investigation of PPy characteristics.
本研究旨在通过比较双极化子与极化子的比例,重点关注C-H变形区域,加深对聚吡咯(PPy)中电导率与形态之间关系的理解。使用不同的表面活性剂合成PPy样品:十二烷基硫酸钠(SDS)、十六烷基三甲基溴化铵(CTAB)和吐温80(TW)。本研究表明,SDS显著改变了C-H变形区域中的双极化子和极化子,并显示出比其他表面活性剂更高的电导率。值得注意的是,使用硫酸铵(APS)时形态转变为片状结构,与使用氯化铁(FeCl)时观察到的颗粒状形态形成对比。这些结果表明,如果氧化剂发生变化,C-H变形中的双极化子和极化子比例与PPy形态无关。然而,这项工作表明,SDS的使用、C-H变形中的双极化子和极化子比例以及导电性能之间存在一致的关系。此外,PPy的天然正电荷和带负电荷的SDS分子可能导致PPy与SDS之间的静电相互作用。这项工作假设这种相互作用可能会导致C-H变形区域中极化子向双极化子的转变,从而提高PPy的电导率。这项工作为未来对PPy特性的研究提供了更多支持。