Stempien Zbigniew, Khalid Mohmmad, Kozanecki Marcin, Filipczak Paulina, Wrzesińska Angelika, Korzeniewska Ewa, Sąsiadek Elżbieta
Institute of Textile Architecture, Lodz University of Technology, 90-924 Lodz, Poland.
Institute of Chemistry of São Carlos, University of São Paulo, São Carlos 13566-590, Brazil.
Materials (Basel). 2021 Jun 26;14(13):3577. doi: 10.3390/ma14133577.
In this work, we propose a novel method for the preparation of polypyrrole (PPy) layers on textile fabrics using a reactive inkjet printing technique with direct freezing of inks under varying temperature up to -16 °C. It was found that the surface resistance of PPy layers on polypropylene (PP) fabric, used as a standard support, linearly decreased from 6335 Ω/sq. to 792 Ω/sq. with the decrease of polymerization temperature from 23 °C to 0 °C. The lowest surface resistance (584 Ω/sq.) of PPy layer was obtained at -12 °C. The spectroscopic studies showed that the degree of the PPy oxidation as well as its conformation is practically independent of the polymerization temperature. Thus, observed tendences in electrical conductivity were assigned to change in PPy layer morphology, as it is significantly influenced by the reaction temperature: the lower the polymerization temperature the smoother the surface of PPy layer. The as-coated PPy layers on PP textile substrates were further assembled as the electrodes in symmetric all-solid-state supercapacitor devices to access their electrochemical performance. The electrochemical results demonstrate that the symmetric supercapacitor device made with the PPy prepared at -12 °C, showed the highest specific capacitance of 72.3 F/g at a current density of 0.6 A/g, and delivers an energy density of 6.12 Wh/kg with a corresponding power density of 139 W/kg.
在这项工作中,我们提出了一种新颖的方法,即使用反应性喷墨印刷技术,在高达 -16 °C 的不同温度下直接冷冻墨水,在织物上制备聚吡咯(PPy)层。结果发现,用作标准支撑体的聚丙烯(PP)织物上的 PPy 层的表面电阻随着聚合温度从 23 °C 降至 0 °C 而从 6335 Ω/sq. 线性降低至 792 Ω/sq.。在 -12 °C 时获得了 PPy 层的最低表面电阻(584 Ω/sq.)。光谱研究表明,PPy 的氧化程度及其构象实际上与聚合温度无关。因此,观察到的电导率趋势归因于 PPy 层形态的变化,因为它受到反应温度的显著影响:聚合温度越低,PPy 层的表面越光滑。PP 纺织基材上涂覆的 PPy 层进一步组装成对称全固态超级电容器装置的电极,以评估其电化学性能。电化学结果表明,用在 -12 °C 制备的 PPy 制成的对称超级电容器装置在电流密度为 0.6 A/g 时显示出最高比电容 72.3 F/g,并在相应功率密度为 139 W/kg 的情况下提供 6.12 Wh/kg 的能量密度。