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Structure and conductivity enhanced treble-shelled porous silicon as an anode for high-performance lithium-ion batteries

机译:结构和电导率增强高音壳多孔硅作为高性能锂离子电池的阳极

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Silicon is regarded as the next generation anode material for lithium-ion batteries because of its high specific capacity, low intercalation potential and abundant reserves. However, huge volume changes during the lithiation and delithiation processes and low electrical conductivity obstruct the practical applications of silicon anodes. In this study, a treble-shelled porous silicon (TS-P-Si) structure was synthesized via a three-step approach. The TS-P-Si anode delivered a capacity of 858.94 mA h g(-1) and a capacity retention of 87.8% (753.99 mA h g(-1)) after being subjected to 400 cycles at a current density of 400 mA g(-1). The good cycling performance was due to the unique structure of the inner silicon oxide layer, middle silver nano-particle layer and outer carbon layer, leading to a good conductivity and a decreased volume change of this silicon-based anode.
机译:硅被认为是锂离子电池的下一代阳极材料,因为其具有高特定容量,低插入潜力和储备。 然而,锂化和脱轨过程中的巨大体积变化和低导电性阻碍了硅阳极的实际应用。 在该研究中,通过三步方法合成了高音壳多孔硅(TS-P-Si)结构。 TS-P-Si阳极输送858.94mA Hg(-1)的容量,并且在电流密度为400mA g的电流密度下进行400次循环后,容量保持87.8%(753.99 mA Hg(-1))( - ) 1)。 良好的循环性能是由于内氧化硅层,中银纳米颗粒层和外碳层的独特结构,导致良好的导电性和该硅基阳极的变化降低。

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    《RSC Advances》 |2019年第61期|共9页
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  • 正文语种 eng
  • 中图分类 化学;
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