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Reduced graphene oxide for Li–air batteries:the effect of oxidation time and reduction conditions for graphene oxide

机译:用于锂空气电池的还原氧化石墨烯:氧化石墨烯的氧化时间和还原条件的影响

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摘要

Reduced graphene oxide (rGO) has shown great promise as an air-cathode for Li-air batteries with high capacity. In this article we demonstrate how the oxidation time of graphene oxide (GO) affects the ratio of different functional groups and how trends of these in GO are extended to chemically and thermally reduced GO. We investigate how differences in functional groups and synthesis may affect the performance of Li-O-2 batteries. The oxidation timescale of the GO was varied between 30 min and 3 days before reduction. Powder Xray diffraction, micro-Raman, FE-SEM, BET analysis, and XPS were used to characterize the GO's and rGO's. Selected samples of GO and rGO were analyzed by solid state C-13 MAS NMR. These methods highlighted the difference between the two types of rGO's, and XPS indicated how the chemical trends in GO are extended to rGO. A comparison between XPS and C-13 MAS NMR showed that both techniques can enhance the structural understanding of rGO. Different rGO cathodes were tested in Li-O-2 batteries which revealed a difference in overpotentials and discharge capacities for the different rGO's. We report the highest Li-O-2 battery discharge capacity recorded of approximately 60,000 mAh/gcarbon achieved with a thermally reduced GO cathode. (C) 2015 Elsevier Ltd. All rights reserved.
机译:还原型氧化石墨烯(rGO)作为高容量锂空气电池的空气阴极已显示出巨大的希望。在本文中,我们演示了氧化石墨烯(GO)的氧化时间如何影响不同官能团的比例,以及它们在GO中的趋势如何扩展到化学和热还原GO。我们研究了官能团和合成上的差异如何影响Li-O-2电池的性能。 GO的氧化时间在还原前30分钟至3天之间变化。粉末X射线衍射,显微拉曼光谱,FE-SEM,BET分析和XPS用于表征GO和rGO。通过固态C-13 MAS NMR分析GO和rGO的选定样品。这些方法突显了两种类型的rGO之间的差异,XPS表明GO中的化学趋势如何扩展到rGO。 XPS和C-13 MAS NMR的比较表明,两种技术都可以增强对rGO的结构理解。在Li-O-2电池中测试了不同的rGO阴极,结果表明不同rGO的过电势和放电容量有所不同。我们报告了通过热还原GO阴极实现的最高Li-O-2电池放电容量,约为60,000 mAh / g碳。 (C)2015 Elsevier Ltd.保留所有权利。

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