Czepa Włodzimierz, Witomska Samanta, Ciesielski Artur, Samorì Paolo
Faculty of Chemistry, Adam Mickiewicz University, ul. Uniwersytetu Poznańskiego 8, 61614 Poznań, Poland.
Center for Advanced Technologies, Adam Mickiewicz University, Uniwersytetu Poznańskiego 10, 61614 Poznań, Poland.
Nanoscale. 2020 Sep 28;12(36):18733-18741. doi: 10.1039/d0nr05226d. Epub 2020 Sep 7.
Supercapacitor energy storage devices recently garnered considerable attention due to their cost-effectiveness, eco-friendly nature, high power density, moderate energy density, and long-term cycling stability. Such figures of merit render supercapacitors unique energy sources to power portable electronic devices. Among various energy storage materials, graphene-related materials have established themselves as ideal electrodes for the development of elite supercapacitors because of their excellent electrical conductivity, high surface area, outstanding mechanical properties combined with the possibility to tailor various physical and chemical properties via chemical functionalization. Increasing the surface area is a powerful strategy to improve the performance of supercapacitors. Here, modified polyhedral oligosilsesquioxane (POSS) is used to improve the electrochemical performance of reduced graphene oxide (rGO) through the enhancement of porosity and the extension of interlayer space between the sheets allowing efficient electrolyte transport. rGO-POSS hybrids exhibited a high specific capacitance of 174 F g, power density reaching 2.25 W cm, and high energy density of 41.4 mW h cm endowed by the introduction of POSS spacers. Moreover, these electrode materials display excellent durability reaching >98% retention after 5000 cycles.
超级电容器储能装置因其成本效益高、环保、功率密度高、能量密度适中以及长期循环稳定性好等优点,近来备受关注。这些优异的性能使超级电容器成为为便携式电子设备供电的独特能源。在各种储能材料中,石墨烯相关材料因其优异的导电性、高比表面积、出色的机械性能以及可通过化学功能化定制各种物理和化学性质的可能性,已成为开发高性能超级电容器的理想电极材料。增加比表面积是提高超级电容器性能的有效策略。在此,通过使用改性多面体低聚倍半硅氧烷(POSS)来提高还原氧化石墨烯(rGO)的电化学性能,具体方式是增加孔隙率并扩大片层间的层间距,以实现高效的电解质传输。rGO-POSS杂化物展现出174 F g的高比电容、2.25 W cm的功率密度以及因引入POSS间隔物而具有的41.4 mW h cm的高能量密度。此外,这些电极材料具有出色的耐久性,在5000次循环后电容保持率>98%。