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Sandwich-Structured Graphene-Fe3O4@Carbon Nanocomposites for High-Performance Lithium-Ion Batteries

机译:用于高性能锂离子电池的夹心结构石墨烯-Fe3O4 @碳纳米复合材料

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摘要

Advanced anode materials for high power and high energy lithium-ion batteries have attracted great interest due to the increasing demand for energy conversion and storage devices. Metal oxides (e.g., Fe3O4) usually possess high theoretical capacities, but poor electrochemical performances owing to their severe volume change and poor electronic conductivity during cycles. In this work, we develop a self-assembly approach for the synthesis of sandwich-structured graphene-Fe3O4@carbon composite, in which Fe3O4 nanoparticles with carbon layers are immobilized between the layers of graphene nanosheets. Compared to Fe3O4@carbon and bulk Fe3O4, graphene-Fe3O4@carbon composite shows superior electrochemical performance, including higher reversible capacity, better cycle and rate performances, which may be attributed to the sandwich structure of the composite, the nanosized Fe3O4, and the carbon layers on the surface of Fe3O4. Moreover, compared to the reported graphene-Fe3O4 composite, the particle size of Fe3O4 is controllable and the content of Fe3O4 in this composite can be arbitrarily adjusted for optimal performance. This novel synthesis strategy may be employed in other sandwich-structured nanocomposites design for high-performance lithium-ion batteries and other electrochemical devices.
机译:由于对能量转换和存储设备的需求不断增加,用于大功率和高能锂离子电池的先进阳极材料引起了人们的极大兴趣。金属氧化物(例如,Fe 3 O 4)通常具有较高的理论容量,但是由于它们在循环期间的剧烈的体积变化和差的电子传导性,因此电化学性能差。在这项工作中,我们开发了一种自组装方法,用于合成夹心结构的石墨烯-Fe3O4 @碳复合材料,其中具有碳层的Fe3O4纳米颗粒固定在石墨烯纳米片层之间。与Fe3O4 @碳和块状Fe3O4相比,石墨烯-Fe3O4 @碳复合材料显示出优异的电化学性能,包括更高的可逆容量,更好的循环和速率性能,这可能归因于复合材料的三明治结构,纳米级的Fe3O4和碳Fe3O4表面的金属层。此外,与报道的石墨烯-Fe 3 O 4复合物相比,Fe 3 O 4的粒径是可控制的,并且该复合物中Fe 3 O 4的含量可以任意调节以实现最佳性能。这种新颖的合成策略可用于高性能锂离子电池和其他电化学装置的其他三明治结构纳米复合材料设计中。

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