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On-Chip Asymmetric Microsupercapacitors Combining Reduced Graphene Oxide and Manganese Oxide for High Energy-Power Tradeoff

机译:片上不对称微超级电容器结合还原的氧化石墨烯和氧化锰实现高能量-功率折衷

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摘要

Given the rapid miniaturization of technology, it is of interest to produce viable on-chip micro-electrochemical energy storage systems. In this study, interdigitated asymmetric microsupercapacitors were fabricated using photolithography, lift-off and electrodeposition methods. Manganese oxide (MnOx) and reduced graphene oxide (rGO) comprised the pseudocapacitive and the double layer component, respectively. Symmetric MnOx//MnOx, rGO//rGO as well as asymmetric rGO//MnOx microsupercapacitors with three different MnOx thicknesses were constructed and characterized in aqueous media. The asymmetric microsupercapacitor with the intermediate MnOx film thickness displayed the optimal energy-power trade-off superior to that of both the symmetric and well as the other asymmetric configurations. The optimal microsupercapacitor exhibited a high stack energy density of 1.02 mWh·cm−3 and a maximal power density of 3.44 W·cm−3. The high energy-power trade-off of the device is attributed to the synergistic effects of utilizing double layer and pseudocapacitive charge storage mechanisms along with in-plane interdigital microelectrode design within one optimized micro-device.
机译:鉴于技术的快速小型化,人们感兴趣的是生产可行的芯片上微电化学能量存储系统。在这项研究中,使用光刻,剥离和电沉积方法制造了交叉指型不对称微超级电容器。氧化锰(MnOx)和还原型氧化石墨烯(rGO)分别包含拟电容和双层组分。构建了具有三种不同MnOx厚度的对称MnOx // MnOx,rGO // rGO以及不对称的rGO // MnOx微型超级电容器,并在水性介质中进行了表征。 MnOx薄膜厚度中等的不对称微超级电容器表现出优于对称和其他不对称构型的最佳能量-功率折衷。最佳的超级电容器的堆能量密度为1.02 mWh·cm -3 ,最大功率密度为3.44 W·cm -3 。该设备的高能量-功率折衷归因于在一个优化的微型设备中利用双层和伪电容电荷存储机制以及面内叉指式微电极设计的协同效应。

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