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Surface Modification of Sputtered Carbon Supercapacitor Electrode by Hydrogen Annealing

机译:氢气退火的溅射碳超级涂物电极的表面改变

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In the applications of renewable energy;;use of energy in the electric vehicles and many other electronic devices such as mobile devices and computers;;electrical energy storage is essential. Batteries are used to store electrical energy but have low power density and lower cycle life. Using extremely porous electrode materials for supercapacitors, based on quick ion transport, are specialized to provide high power density, long stability and effective energy storage. Using graphene-based electrode is the best way to boost the energy density of supercapacitor. Graphene synthesized by chemical exfoliation, ultrasonic exfoliation and solution based chemical reduction suffers agglomerations that tends to restack the graphene sheets. In the present work, we studied the option of hydrogen gas annealing to obtain graphene from amorphous carbon film, coated on Cu substrate using sputtering. For electrochemical assessment, in situ developed film was compared with graphene applied from other methods of graphene synthesis. Atomic force microscopy (AFM) results revealed that annealed carbon sputtered electrode has high route mean square (RMS) roughness i.e., 181.5 nm, most probably because of graphene formation. Cyclic voltammogram (CV) results show less area curve for annealed electrode which depicts high active area for charge storage and enhanced conductivity due to deposited graphene layer.
机译:在可再生能源的应用中;;在电动车辆中使用能量以及许多其他电子设备,如移动设备和计算机;;电能存储是必不可少的。电池用于存储电能,但具有低功率密度和较低的循环寿命。基于快速离子运输,使用极多孔电极材料用于超级电容器,专业从而提供高功率密度,长稳定性和有效的能量存储。使用基于石墨烯的电极是提高超级电容器能量密度的最佳方法。通过化学剥离,超声剥离和基于溶液的化学还原合成的石墨烯遭受了倾向于重新破坏石墨烯片的附聚物。在本作本作中,我们研究了氢气退火的选项,以获得来自非晶碳膜的石墨烯,使用溅射涂覆在Cu衬底上。对于电化学评估,与从其他石墨烯合成方法应用的石墨烯进行比较原位开发薄膜。原子力显微镜(AFM)结果表明,退火的碳溅射电极具有高途径平均正方形(RMS)粗糙度,即181.5nm,最可能是因为石墨烯形成。循环伏安图(CV)结果显示了退火电极的较少区域曲线,其描绘了由于沉积的石墨烯层而导致的电荷存储的高活性区域和增强的导电性。

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