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Dual yolk-shell structure of carbon and silica-coated silicon for high-performance lithium-ion batteries

机译:高性能锂离子电池用碳和硅涂层硅的双卵黄壳结构

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摘要

Silicon batteries have attracted much attention in recent years due to their high theoretical capacity, although a rapid capacity fade is normally observed, attributed mainly to volume expansion during lithiation. Here, we report for the first time successful synthesis of Si/void/SiO2/void/C nanostructures. The synthesis strategy only involves selective etching of SiO2 in Si/SiO2/C structures with hydrofluoric acid solution. Compared with reported results, such novel structures include a hard SiO2-coated layer, a conductive carbon-coated layer, and two internal void spaces. In the structures, the carbon can enhance conductivity, the SiO2 layer has mechanically strong qualities, and the two internal void spaces can confine and accommodate volume expansion of silicon during lithiation. Therefore, these specially designed dual yolk-shell structures exhibit a stable and high capacity of 956 mA h g−1 after 430 cycles with capacity retention of 83%, while the capacity of Si/C core-shell structures rapidly decreases in the first ten cycles under the same experimental conditions. The novel dual yolk-shell structures developed for Si can also be extended to other battery materials that undergo large volume changes.
机译:尽管通常观察到快速的容量衰减,这主要归因于锂化期间的体积膨胀,但是由于其高的理论容量,近年来,硅电池已经引起了很多关注。在这里,我们首次报告成功合成了Si / void / SiO2 / void / C纳米结构。合成策略仅涉及使用氢氟酸溶液选择性蚀刻Si / SiO2 / C结构中的SiO2。与报道的结果相比,这种新颖的结构包括硬质SiO2涂层,导电碳涂层和两个内部空隙。在结构中,碳可以增强导电性,SiO2层具有机械强度,并且两个内部空隙可以限制并适应锂化过程中硅的体积膨胀。因此,这些经过特殊设计的双卵黄壳结构在430个循环后表现出956 mA hg-1的稳定且高容量,容量保持率达83%,而Si / C核-壳结构的容量在前十个循环中迅速下降。在相同的实验条件下为硅开发的新型双卵黄壳结构还可以扩展到经历大体积变化的其他电池材料。

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