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Enhanced Rate Performance of Mesoporous Co3O4 Nanosheet Supercapacitor Electrodes by Hydrous RuO2 Nanoparticle Decoration

机译:含水RuO2纳米粒子修饰提高了介孔Co3O4纳米片超级电容器电极的倍率性能

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Mesoporous cobalt oxide (Co3O4) nanosheet electrode arrays are directly grown over flexible carbon paper substrates using an economical and scalable two-step process for supercapacitor applications. The interconnected nanosheet arrays form a three-dimensional network with exceptional supercapacitor performance in standard two electrode configuration. Dramatic improvement in the rate capacity of the Co3O4 nanosheets is achieved by electrodeposition of nanocrystalline, hydrous RuO2 nano-particles dispersed on the Co3O4 nanosheets. An optimum RuO2 electro-deposition time is found to result in the best supercapacitor performance, where the controlled morphology of the electrode provides a balance between good conductivity and efficient electrolyte access to the RuO2 nanoparticles. An excellent specific capacitance of 905 F/g at 1 A/g is obtained, and a nearly constant rate performance of 78% is achieved at current density ranging from 1 to 40 A/g. The sample could retain more than 96% of its maximum capacitance even after 5000 continuous charge-discharge cycles at a constant high current density of 10 A/g. Thicker RuO2 coating, while maintaining good conductivity, results in agglomeration, decreasing electrolyte access to active material and hence the capacitive performance.
机译:中孔氧化钴(Co3O4)纳米片电极阵列可使用经济且可扩展的两步工艺直接在柔性碳纸基材上生长,以用于超级电容器应用。互连的纳米片阵列形成三维网络,在标准的两个电极配置中具有出色的超级电容器性能。通过电沉积分散在Co3O4纳米片上的纳米晶含水RuO2纳米粒子,可以实现Co3O4纳米片的倍率容量的显着改善。发现最佳的RuO2电沉积时间可产生最佳的超级电容器性能,其中电极的受控形貌可在良好的电导率和有效的电解质对RuO2纳米颗粒的访问之间取得平衡。在1 A / g时可获得905 F / g的出色比电容,并且在1至40 A / g的电流密度下可获得78%的几乎恒定速率性能。即使在10 A / g的恒定高电流密度下连续进行5000次充放电循环后,样品仍可以保留其最大电容的96%以上。较厚的RuO2涂层在保持良好电导率的同时,会导致团聚,从而减少电解质与活性材料的接触,从而降低了电容性能。

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