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Electrochemical Performance Enhancement of Micro-Sized Porous Si by Integrating with Nano-Sn and Carbonaceous Materials

机译:用纳米-Sn和碳质材料与微尺寸多孔Si的电化学性能提高

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摘要

Silicon is investigated as one of the most prospective anode materials for next generation lithium ion batteries due to its superior theoretical capacity (3580 mAh g−1), but its commercial application is hindered by its inferior dynamic property and poor cyclic performance. Herein, we presented a facile method for preparing silicon/tin@graphite-amorphous carbon (Si/Sn@G–C) composite through hydrolyzing of SnCl2 on etched Fe–Si alloys, followed by ball milling mixture and carbon pyrolysis reduction processes. Structural characterization indicates that the nano-Sn decorated porous Si particles are coated by graphite and amorphous carbon. The addition of nano-Sn and carbonaceous materials can effectively improve the dynamic performance and the structure stability of the composite. As a result, it exhibits an initial columbic efficiency of 79% and a stable specific capacity of 825.5 mAh g−1 after 300 cycles at a current density of 1 A g−1. Besides, the Si/Sn@G–C composite exerts enhanced rate performance with 445 mAh g−1 retention at 5 A g−1. This work provides an approach to improve the electrochemical performance of Si anode materials through reasonable compositing with elements from the same family.
机译:硅被研究为下一代锂离子电池的最佳阳极材料之一,由于其优异的理论能力(3580mAhg-1),但其商业应用受其劣等动力性和循环性能差的阻碍。在此,我们介绍了一种用于制备硅/锡@石墨 - 无定形碳(Si / Sn @ G-C)复合物,通过在蚀刻的Fe-Si合金上水解SnCl2,然后是球磨混合物和碳热解还原过程。结构表征表明,纳米-Sn装饰多孔Si颗粒涂覆镀石和无定形碳。添加纳米Sn和碳质材料可以有效地提高复合材料的动态性能和结构稳定性。结果,在300次循环的电流密度为1 A G-1后,它表现出79%的初始培养效率为79%,稳定的比容量为825.5mAhg-1。此外,Si / Sn @ G-C复合材料施加增强的速率性能,445 MAH G-1保持在5 A G-1。本作品提供了一种通过与来自同一家族的元素合理合成来改善Si阳极材料的电化学性能。

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