Sun Yimin, Fang Zheng, Wang Chenxu, Ariyawansha K R Rakhitha Malinga, Zhou Aijun, Duan Hongwei
School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan, Hubei 430073, People's Republic of China.
Nanoscale. 2015 May 7;7(17):7790-801. doi: 10.1039/c5nr00946d.
A sandwich-structured flexible supercapacitor electrode has been developed based on MnO2 nanonest (MNN) modified ionic liquid (IL) functionalized graphene paper (GP), which is fabricated by functionalizing graphene nanosheets with an amine-terminated IL (i.e., 1-(3-aminopropyl)-3-methylimidazolium bromide) to form freestanding IL functionalized GP (IL-GP), and then modifying IL-GP with a unique MNN structure via controllable template-free ultrasonic electrodeposition. The as-obtained MNN modified IL-GP (MNN/IL-GP) inherits the excellent pseudocapacity of the metal oxide, the high conductivity and electric double layer charging/discharging of IL-graphene composites, and therefore shows an enhanced supercapacitor performance. The maximum specific capacitance of 411 F g(-1) can be achieved by chronopotentiometry at a current density of 1 A g(-1). Meanwhile, the MNN/IL-GP electrode exhibits excellent rate capability and cycling stability, its specific capacitance is maintained at 70% as the current densities increase from 1 to 20 A g(-1) and 85% at a current density of 10 A g(-1) after 10 000 cycles. More importantly, the MNN/IL-GP displays distinguished mechanical stability and flexibility for device packaging, although its thickness is merely 8 μm. These features collectively demonstrate the potential of MNN/IL-GP as a high-performance paper electrode for flexible and lightweight and highly efficient electrochemical capacitor applications.
基于MnO₂纳米巢(MNN)修饰的离子液体(IL)功能化石墨烯纸(GP),开发了一种三明治结构的柔性超级电容器电极。该电极的制备方法是:用胺基封端的离子液体(即1-(3-氨丙基)-3-甲基咪唑溴盐)对石墨烯纳米片进行功能化,以形成独立的离子液体功能化石墨烯纸(IL-GP),然后通过可控的无模板超声电沉积,用独特的MNN结构对IL-GP进行修饰。所得到的MNN修饰的IL-GP(MNN/IL-GP)继承了金属氧化物优异的赝电容、IL-石墨烯复合材料的高导电性和双电层充放电性能,因此表现出增强的超级电容器性能。通过计时电位法在1 A g⁻¹的电流密度下可实现411 F g⁻¹的最大比电容。同时,MNN/IL-GP电极表现出优异的倍率性能和循环稳定性,当电流密度从1增加到20 A g⁻¹时,其比电容保持在70%,在10000次循环后,在10 A g⁻¹的电流密度下比电容保持在85%。更重要的是,尽管MNN/IL-GP的厚度仅为8μm,但它在器件封装方面表现出卓越的机械稳定性和柔韧性。这些特性共同证明了MNN/IL-GP作为一种高性能纸质电极在柔性、轻质和高效电化学电容器应用中的潜力。