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Copper ferrites@reduced graphene oxide anode materials for advanced lithium storage applications

机译:铜铁氧体@降低石墨烯氧化物阳极材料,用于高级锂储存应用

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摘要

Abstract Copper ferrites are emerging transition metal oxides that have potential applications in energy storage devices. However, it still lacks in-depth designing of copper ferrites based anode architectures with enhanced electroactivity for lithium-ion batteries. Here, we report a facile synthesis technology of copper ferrites anchored on reduced graphene oxide (CuFeO2@rGO and Cu/CuFe2O4@rGO) as the high-performance electrodes. In the resulting configuration, reduced graphene offers continuous conductive channels for electron/ion transfer and high specific surface area to accommodate the volume expansion of copper ferrites. Consequently, the sheet-on-sheet CuFeO2@rGO electrode exhibits a high reversible capacity (587 mAh g−1 after 100 cycles at 200 mA g−1). In particular, Cu/CuFe2O4@rGO hybrid, which combines the advantages of nano-copper and reduced graphene, manifests a significant enhancement in lithium storage properties. It reveals superior rate capability (723 mAh g−1 at 800 mA g−1; 560 mAh g−1 at 3200 mA g−1) and robust cycling capability (1102 mAh g−1 after 250 cycles at 800 mA g−1). This unique structure design provides a strategy for the development of multivalent metal oxides in lithium storage device applications.
机译:摘要铜铁氧体正在出现具有潜在应用在能量存储装置中的过渡金属氧化物。然而,它仍然缺乏基于锂铁氧体的铜铁氧体阳极架构的深度设计,具有增强的锂离子电池的电切断性。这里,我们报告了锚定的铜铁氧体的容易合成技术,其作为高性能电极作为高性能电极锚定的铜铁氧体。在所得到的配置中,还原石墨烯为电子/离子传递和高比表面积提供连续导电通道,以适应铜铁氧体的体积膨胀。因此,片材上的纸张CufeO 2 @ Rgo电极在200mA G-1的100次循环后,高可逆容量(587mAhg-1)。特别地,结合纳米铜和石墨烯的优点的Cu / Cufe2O4 @ Rgo杂种表现出锂储存性能的显着增强。它揭示了优异的速率能力(800 mA G-1,在800 mA G-1,3200 mA G-1的723mAh G-1)和鲁棒循环能力(在800 mA G-1的250次循环后1102mAh g-1) 。这种独特的结构设计提供了锂储存装置应用中多价金属氧化物的发展策略。

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