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Nanocrystal Conversion-Assisted Design of Sn–FeAlloy with a Core–Shell Structure as High-Performance Anodesfor Lithium-Ion Batteries

机译:Sn-Fe纳米晶转化辅助设计具有核壳结构的合金作为高性能阳极锂离子电池

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摘要

Sn-based alloy materials are strong candidates to replace graphitic carbon as the anode for the next generation lithium-ion batteries because of their much higher gravimetric and volumetric capacity. A series of nanosize SnyFe alloys derived from the chemical transformation of preformed Sn nanoparticles as templates have been synthesized and characterized. An optimized Sn5Fe/Sn2Fe anode with a core–shell structure delivered 541 mAh·g–1 after 200 cycles at the C/2 rate, retaining close to 100% of the initial capacity. Its volumetric capacity is double that of commercial graphitic carbon. It also has an excellent rate performance, delivering 94.8, 84.3, 72.1, and 58.2% of the 0.1 C capacity (679.8 mAh/g) at 0.2, 0.5, 1 and 2 C, respectively. The capacity is recovered upon lowering the rate. The exceptional cycling/rate capability and higher gravimetric/volumetric capacity make the SnyFe alloy a potential candidate as the anode in lithium-ion batteries. The understanding of SnyFe alloys from this work also provides insight for designing other Sn–M (M = Co, Ni, Cu, Mn, etc.) system.
机译:锡基合金材料由于具有更高的重量和体积容量,因此可以替代石墨碳作为下一代锂离子电池的阳极。合成和表征了一系列以预制锡纳米粒子的化学转化为模板的纳米级SnyFe合金。经过优化的具有核-壳结构的Sn5Fe / Sn2Fe阳极,在200次循环后,以C / 2的速率提供了541 mAh·g –1 ,保留了接近100%的初始容量。其体积容量是商品石墨碳的两倍。它还具有出色的速率性能,在0.2、0.5、1和2 C时分别提供0.1 C容量(679.8 mAh / g)的94.8、84.3、72.1和58.2%。降低速率即可恢复容量。出色的循环/速率能力和更高的重量/体积容量使SnyFe合金成为锂离子电池阳极的潜在候选者。通过这项工作对SnyFe合金的理解也为设计其他Sn-M(M = Co,Ni,Cu,Mn等)系统提供了见识。

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