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首页> 外文期刊>RSC Advances >Synthesis of porous microspheres composed of graphitized carbon@amorphous silicon/carbon layers as high performance anode materials for Li-ion batteries
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Synthesis of porous microspheres composed of graphitized carbon@amorphous silicon/carbon layers as high performance anode materials for Li-ion batteries

机译:石墨化碳@非晶硅/碳层组成的多孔微球的合成作为锂离子电池的高性能负极材料

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We report in situ growth of amorphous silicon/carbon (Si/C) layers on graphitized carbon black (GCB) particles in porous microspheres (PMs) for formation of novel GCB@Si/C PMs as high performance anode materials. The preparation included spray drying, KOH activation and chemical vapor deposition at 900 degrees C, and used methyltrichlorosilane as both the Si and C precursor, which is a cheap byproduct in the organosilane industry. The obtained samples were characterized by X-ray diffraction, thermogravimetric analysis, nitrogen adsorption, transmission electron microscopy, and scanning electron microscopy. Compared with the bare GCB PMs, the GCB@Si/C PMs showed a significantly enhanced electrochemical performance with high lithium storage capacity and excellent cycling stability (the discharge capacity of GCB@Si/C-3 PMs and GCB@Si/C-6 PMs is maintained at 587.2 and 729.7 mA h g(-1) after 200 cycles at a current density of 100 mA g(-1)), because the unique interconnected porous structure within the microspheres could absorb a large portion of Si volume change during Li insertion and extraction reactions, promote the diffusion of Li-ion and electrolyte solution, hinder the cracking or crumbling of the electrode, and additionally, the GCB and amorphous C provide high conductive electron pathway. This work opens a new way for fabrication of Si/C nanocomposites as anode materials for Li-ion batteries.
机译:我们报告原位生长在多孔微球(PMs)中的石墨化炭黑(GCB)颗粒上的非晶硅/碳(Si / C)层,以形成新型GCB @ Si / C PMs作为高性能阳极材料。制备包括在900摄氏度下进行喷雾干燥,KOH活化和化学气相沉积,并使用甲基三氯硅烷作为Si和C的前体,这在有机硅烷工业中是廉价的副产品。通过X射线衍射,热重分析,氮吸附,透射电子显微镜和扫描电子显微镜对获得的样品进行表征。与裸GCB PM相比,GCB @ Si / C PMs的电化学性能显着增强,具有高锂存储容量和出色的循环稳定性(GCB @ Si / C-3 PM和GCB @ Si / C-6的放电容量200次循环后,在100 mA g(-1)的电流密度下,PM保持在587.2和729.7 mA hg(-1),这是因为微球内独特的相互连接的多孔结构可以吸收Li期间大部分的Si体积变化插入和萃取反应,促进锂离子和电解质溶液的扩散,阻碍电极的破裂或破裂,此外,GCB和非晶态C提供了高导电性电子路径。这项工作为制造Si / C纳米复合材料作为锂离子电池的负极材料开辟了一条新途径。

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