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SnO_2@C@F_e3O_4 Sandwich-like Hollow Nanospheres for High-Performance Lithium-Ion Battery Anodes

机译:SnO_2 @ C @ F_e3O_4三明治形空心纳米球,用于高性能锂离子电池阳极

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摘要

SnO2@C@Fe3O4 sandwich-like hollow nanospheres are rationally synthesized by the surface adsorption of Fe(II) and the subsequent growth of Fe3O4 on the SnO2@C hollow nanospheres. In the novel nanostructures, the SnO2 internal layer can supply an indurative and hollow framework, which can buffer the repetitive volume variation during cycles. The conductive carbon interlayer can apparently improve the electronic conductivity and efficiently avoid the aggregation of Fe(3)O(4)( )and SnO2 nanoparticles. Fe3O4 nanoparticles on the surface can strengthen the walls of hollow nanospheres, which is beneficial to the structural integrity and thus improves the cycling stability. Moreover, the effects of the calcination temperature on the properties of anode nanomaterials are also investigated. The grain size of Fe3O4 nanoparticles on SnO2@C@Fe3O4 composites gradually expands with the increasing calcination temperature. The electrochemical properties of SnO2@C@Fe3O4 composites are optimized by bridging the respective merits of SnO2, C as well as Fe3O4 and adjusting the calcination temperature. It is found that the SnO2@C@Fe3O4 hollow nanospheres at 500 degrees C exhibit a high specific capacity (1468.1 mAh g(-1)) and an extraordinary cycling stability (1007.6 mAh g(-1) after the 100th cycle). It is expected that this synthesis strategy can be further applied to the rational design of other nanomaterials for energy storage.
机译:SnO2 @ C @ Fe3O4三明治状空心纳米球是通过Fe(II)的表面吸附和随后在SnO2 @ C空心纳米球上生长的Fe3O4合理合成的。在新颖的纳米结构中,SnO2内层可以提供一种坚固的中空骨架,可以缓冲循环中重复的体积变化。导电碳中间层可以明显改善电子导电性,并有效避免Fe(3)O(4)()和SnO2纳米粒子的聚集。表面的Fe3O4纳米颗粒可以增强空心纳米球的壁,这有利于结构完整性,从而提高了循环稳定性。此外,还研究了煅烧温度对阳极纳米材料性能的影响。随着煅烧温度的升高,SnO2 @ C @ Fe3O4复合材料上的Fe3O4纳米颗粒的粒径逐渐增大。通过桥接SnO2,C和Fe3O4各自的优点并调节煅烧温度,可以优化SnO2 @ C @ Fe3O4复合材料的电化学性能。发现在500摄氏度的SnO2 @ C @ Fe3O4中空纳米球表现出高的比容量(1468.1 mAh g(-1))和非凡的循环稳定性(第100次循环后1007.6 mAh g(-1))。预期该合成策略可以进一步应用于合理的其他纳米材料储能设计中。

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  • 来源
    《Energy & fuels》 |2020年第2期|2462-2470|共9页
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  • 作者单位

    Capital Normal Univ Dept Chem Beijing 100048 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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