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Nanostructure Silicon Anodes Prepared by Chemical Reduction Method for Lithium Ion Batteries.

机译:化学还原方法制备的锂离子电池纳米结构硅阳极。

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摘要

Silicon is a promising anode material in high energy density application of lithium ion batteries because it is known to have the largest specific capacity (∼4200mAh/g), ten time that of the commercially graphite carbon. However, they have shown great capacity fading and short battery life due to big volume changes upon insertion and extraction of lithium, which results in pulverization and loss of the electrical contact between the active material and the current collector.;In this thesis, we successfully fabricated two kinds of nanostructured silicon anodes by chemical reduction method and test them versus Li as half-cell. Porous Si showed a reversible capacity of 1482mAh/g after 30 cycles, which is 50% of its initial capacity. Carbon coating greatly improves the cycling stability and increase the capacity retention to 85%. Compared Si nanosheets structure, graphene-silica sandwich structure showed great improvements in capacity and cycling stability. This chemical reduction method is facile, mass productive and thus is promising in the nanostructure silicon anode fabrication.
机译:硅是锂离子电池高能量密度应用中有希望的阳极材料,因为已知硅具有最大的比容量(〜4200mAh / g),是商业石墨碳的十倍。然而,由于锂的插入和提取时体积变化大,它们显示出很大的容量衰减和较短的电池寿命,这导致活性物质与集电器之间的粉碎和电接触的损失。用化学还原法制备了两种纳米结构的硅阳极,并以锂作为半电池进行了测试。多孔硅在30个循环后的可逆容量为1482mAh / g,是其初始容量的50%。碳涂层极大地改善了循环稳定性,并将容量保持率提高到85%。与Si纳米片结构相比,石墨烯-二氧化硅夹心结构在容量和循环稳定性方面显示出极大的改善。这种化学还原方法是容易的,可大量生产的,因此在纳米结构硅阳极的制造中很有希望。

著录项

  • 作者

    Zhan, Xiaobo.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Nanotechnology.;Materials science.
  • 学位 M.S.
  • 年度 2013
  • 页码 59 p.
  • 总页数 59
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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