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Microsized Porous SiOx@C Composites Synthesized through Aluminothermic Reduction from Rice Husks and Used as Anode for Lithium-Ion Batteries

机译:通过稻壳铝热还原法合成的微细多孔SiOx @ C复合材料,并用作锂离子电池的阳极

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摘要

Microsized porous SiOx@C composites used as anode for lithium ion batteries (LIBs) are Synthesized from rice husks (RHs) through low-temperature (700 degrees C) aluminothermic reduction. The resulting SiOx@C composite shows mesoporous irregular particle morphology with a high specific surface area of 597.06 m(2)/g, under the optimized reduction time. This porous SiOx@C composite is constructed by SiOx nanoparticles uniformly dispersed in the C matrix. When tested as anode material for LIBs, it displays considerable specific capacity (1230 mAh/g at a current density of 0.1 A/g) and excellent cyclic stability with capacity-fading of less than 0.5% after 200 cycles at 0.8 A/g. The dramatic volume change for the Si anode during lithium-ion (Li+) insertion and extraction can be successfully buffered because of the formation of Li2O and Li4SiO4 during initial lithiation process and carbon Coating layer on the surface of SiOx. The porous structure could also mitigate the volume change and mechanical strains and shorten the Li+ diffusion path length. These characteristics improve the cyclic stability of the electrode. This low-cost and environment-friendly SiOx@C composite anode material exhibits great potential as an alternative for traditional graphite anodes.
机译:锂离子电池(LIB)阳极的超细多孔SiOx @ C复合材料是由稻壳(RH)通过低温(700℃)铝热还原法合成的。所得的SiOx @ C复合材料在优化的还原时间下显示出具有597.06 m(2)/ g高比表面积的中孔不规则颗粒形态。这种多孔SiOx @ C复合材料是由均匀分散在C基质中的SiOx纳米颗粒构成的。当作为LIB的负极材料进行测试时,它显示出相当大的比容量(在电流密度为0.1 A / g时为1230 mAh / g)和出色的循环稳定性,在0.8 A / g的200个循环后容量衰减小于0.5%。由于在初始锂化过程中形成了Li2O和Li4SiO4,并且在SiOx表面形成了碳涂层,因此可以成功地缓冲锂离子(Li +)插入和提取过程中Si阳极的体积变化。多孔结构还可以减轻体积变化和机械应变,并缩短Li +扩散路径的长度。这些特性改善了电极的循环稳定性。这种低成本,环保的SiOx @ C复合阳极材料具有巨大的潜力,可以替代传统的石墨阳极。

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