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Foam carbon loading Fe3O4 nanoparticles for superior lithium-ion batteries anode material

机译:泡沫碳负载Fe3O4纳米颗粒,用于高级锂离子电池负极材料

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摘要

A novel foam carbon (FC) material with partly graphitized and 3D interlaced thin carbon interlayer as skeleton was synthesized by an eco-friendly route. Fe3O4 nanoparticles (similar to 20 nm) were loaded homogenously into pores of FC through simple impregnating and thermal treatment. The electrochemical property of Fe3O4/FC composite was evaluated by galvanostatic discharge/charge cycling, cyclic voltammetry, and impedance spectroscopy. The results showed that Fe3O4/FC nanocomposite possessed superior cycling stability and C-rate performance. A stable capacity of 1100 mAh g(-1) was maintained at a current density of 0.1 C and the reversible capacity reached to 440 mAh g(-1) at 5 C in C-rate test. The excellent performance is attributed to the desired composite structure of Fe3O4/FC, including homogenous distribution of nano-sized Fe3O4 particles, 3D interconnected electron transmission carbon network, and abundant interlinked pore channel, which guarantee quick electron and Li+ transfer as well as electrode structure undamaged during (de)lithiation process.
机译:通过生态友好的途径合成了一种新型的以部分石墨化和3D交错的薄碳夹层为骨架的泡沫碳材料。通过简单的浸渍和热处理,将Fe3O4纳米颗粒(类似于20 nm)均匀地加载到FC的孔中。 Fe3O4 / FC复合材料的电化学性能通过恒电流放电/充电循环,循环伏安法和阻抗谱进行了评估。结果表明,Fe3O4 / FC纳米复合材料具有优异的循环稳定性和C速率性能。在C速率测试中,在0.1 C的电流密度下保持了1100 mAh g(-1)的稳定容量,在5 C下可逆容量达到440 mAh g(-1)。优异的性能归因于所需的Fe3O4 / FC复合结构,包括纳米尺寸Fe3O4颗粒的均匀分布,3D互连的电子传输碳网络以及丰富的互连孔隙通道,可确保快速的电子和Li +转移以及电极结构。 (去)锂化过程中未损坏。

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