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Large energy storage efficiency of the dielectric layer of graphene nanocapacitors

机译:石墨烯纳米容器介电层的大储能效率

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摘要

Electric capacitors are commonly used in electronic circuits for the short-term storage of small amounts of energy. It is desirable however to use capacitors to store much larger energy amounts to replace rechargeable batteries. Unfortunately existing capacitors cannot store sufficient energy to be able to replace common electrochemical energy storage systems. Here we examine the energy storage capabilities of graphene nanocapacitors, which are tri-layer devices involving an Al film, Al2O3 dielectric layer, and a single layer of carbon atoms, i.e., graphene. This is a purely electronic capacitor and therefore it can function in a wide temperature interval. The capacitor shows a high dielectric breakdown electric field strength, of the order of 1000 kV mm(-1) (i.e., 1GVm(-1)), which is much larger than the table value of the Al2O3 dielectric strength. The corresponding energy density is 10-100 times larger than the energy density of a common electrolytic capacitor. Moreover, we discover that the amount of charge stored in the dielectric layer can be equal or can even exceed the amount of charge stored on the capacitor plates. The dielectric discharge current follows a power-law time dependence. We suggest a model to explain this behavior.
机译:电容器通常用于电子电路中,用于少量能量的短期存储。然而,希望使用电容器来存储更大的能量,以替换可充电电池。遗憾的是,现有电容器不能存储足够的能量以能够替换公共电化学能量存储系统。在这里,我们研究了石墨烯纳米酰基丙酸的能量储存能力,其是涉及Al膜,Al2O3介电层和单层碳原子的三层器件,即石墨烯。这是纯电子电容器,因此它可以在宽温度间隔中起作用。电容器表示高介电击穿电场强度,大约为1000kVmm(-1)(即1GVM(-1)),其远大于AL2O3电介质强度的表值。相应的能量密度大于公共电解电容器的能量密度的10-100倍。此外,我们发现存储在介电层中的电荷量可以是等于的,或者甚至可以超过存储在电容器板上的电荷量。介电放电电流遵循动力定期依赖性。我们建议一个模型来解释这种行为。

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