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Novel Germanium/Polypyrrole Composite for High Power Lithium-ion Batteries

机译:用于大功率锂离子电池的新型锗/聚吡咯复合材料

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摘要

Nano-Germanium/polypyrrole composite has been synthesized by chemical reduction method in aqueous solution. The Ge nanoparticles were directly coated on the surface of the polypyrrole. The morphology and structural properties of samples were determined by X-ray diffraction, scanning electron microscopy and transmission electron microscopy. Thermogravimetric analysis was carried out to determine the polypyrrole content. The electrochemical properties of the samples have been investigated and their suitability as anode materials for the lithium-ion battery was examined. The discharge capacity of the Ge nanoparticles calculated in the Ge-polypyrrole composite is 1014 mAh g−1 after 50 cycles at 0.2 C rate, which is much higher than that of pristine germanium (439 mAh g−1). The composite also demonstrates high specific discharge capacities at different current rates (1318, 1032, 661, and 460 mAh g−1 at 0.5, 1.0, 2.0, and 4.0 C, respectively). The superior electrochemical performance of Ge-polypyrrole composite could be attributed to the polypyrrole core, which provides an efficient transport pathway for electrons. SEM images of the electrodes have demonstrated that polypyrrole can also act as a conductive binder and alleviate the pulverization of electrode caused by the huge volume changes of the nanosized germanium particles during Li+ intercalation/de-intercalation.
机译:通过化学还原法在水溶液中合成了纳米锗/聚吡咯复合材料。 Ge纳米颗粒直接涂覆在聚吡咯的表面上。通过X射线衍射,扫描电子显微镜和透射电子显微镜确定样品的形态和结构性质。进行热重分析以确定聚吡咯含量。已经研究了样品的电化学性质,并检查了它们作为锂离子电池负极材料的适用性。 Ge-聚吡咯复合材料中Ge纳米粒子的放电容量在0.2 C速率下经过50次循环后的放电容量为1014 mAh g -1 ,远高于原始锗(439 mAh g -1 > −1 )。该复合材料还显示出在不同电流速率下(分别在0.5、1.0、2.0和4.0 1.0C下分别为1318、1032、661和460 mAh g -1 )的高比放电容量。 Ge-聚吡咯复合材料的优异电化学性能可归因于聚吡咯核,它为电子提供了有效的传输途径。电极的SEM图像表明,聚吡咯还可以充当导电粘合剂,并减轻由于Li + 嵌入/脱嵌过程中纳米尺寸锗颗粒的巨大体积变化而引起的电极粉碎。

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