Korea Institute of Toxicology , Jeongeup-Si 56212, Republic of Korea.
Chemistry Department, ICEx, Federal University of Minas Gerais , Avenue Antônio Carlos, 6627, Pampulha, Belo Horizonte, Minas Gerais 31270-901, Brazil.
ACS Appl Mater Interfaces. 2017 Sep 27;9(38):33203-33211. doi: 10.1021/acsami.7b11574. Epub 2017 Sep 18.
We demonstrate a simple and efficient one-step procedure for synthesizing a solid state polypyrrole (PPy) thin film for supercapacitor applications using alternating current impedance spectroscopy. By controlling the frequency and amplitude we were able to create unique PPy nano/microstructures with a particular morphology of the loop. Our PPy micro/nanosphere shows extremely high capacitance of 568 F/g, which is close to the theoretical value of 620 F/g and 20-100% higher than that of other reported PPy electrodes. Most of all, this material presents high capacitance and significantly improved electrochemical stability without pulverization of its structure, demonstrating 77% retention of the capacitance value even after 10 000 charge/discharge cycles. These results are a consequence of the larger surface area and adequate porosity generated due to the balance between the nano/micro PPy loops. This created porous structure also allows the favored penetration of electrolyte and high ion mobility within the polymer and prevents the mechanical failure of the physical structure during volume variation associated with the insertion/deinsertion of ions upon cycling.
我们展示了一种简单而高效的一步法,通过交流阻抗谱法在固态下合成用于超级电容器的聚吡咯(PPy)薄膜。通过控制频率和幅度,我们能够创造出具有独特环形形态的独特 PPy 纳米/微米结构。我们的 PPy 微/纳米球显示出极高的电容值 568 F/g,接近 620 F/g 的理论值,比其他报道的 PPy 电极高 20-100%。最重要的是,这种材料具有高电容和显著改善的电化学稳定性,而不会使其结构粉碎,即使经过 10000 次充放电循环后,电容值仍保持 77%的保留率。这些结果是由于纳米/微米 PPy 环之间的平衡产生了更大的表面积和足够的孔隙率所致。这种多孔结构还允许电解质和高离子在聚合物内的迁移率,并且防止在与离子的插入/脱插相关的体积变化期间物理结构的机械失效。